Data science / en Researchers identify cheap and effective biomarkers for DCIS tumor stage /news/researchers-identify-cheap-and-effective-biomarkers-dcis-tumor-stage <span class="field field--name-title field--type-string field--label-hidden"><h1>Researchers identify cheap and effective biomarkers for DCIS tumor stage</h1> </span> <span class="field field--name-uid field--type-entity-reference field--label-hidden"> <span>By Tom Ulrich</span> </span> <span class="field field--name-created field--type-created field--label-hidden"><time datetime="2024-07-25T12:05:54-04:00" class="datetime">July 25, 2024</time> </span> <div class="hero-section container"> <div class="hero-section__row row"> <div class="hero-section__content hero-section__content_left col-6"> <div class="hero-section__breadcrumbs"> <div class="block block-system block-system-breadcrumb-block"> <nav class="breadcrumb" role="navigation" aria-labelledby="system-breadcrumb"> <h2 id="system-breadcrumb" class="visually-hidden">Breadcrumb</h2> <ol> <li> <a href="/">Home</a> </li> <li> <a href="/news">News</a> </li> </ol> </nav> </div> </div> <div class="hero-section__title"> <div class="block block-layout-builder block-field-blocknodelong-storytitle"> <span class="field field--name-title field--type-string field--label-hidden"><h1>Researchers identify cheap and effective biomarkers for DCIS tumor stage</h1> </span> </div> </div> <div class="hero-section__description"> <div class="block block-layout-builder block-field-blocknodelong-storybody"> <div class="clearfix text-formatted field field--name-body field--type-text-with-summary field--label-hidden field__item"><p>New study shows how leveraging unsupervised learning can decode DCIS progression from chromatin images.</p> </div> </div> </div> <div class="hero-section__author"> <div class="block block-layout-builder block-extra-field-blocknodelong-storyextra-field-author-custom"> By Nadya Karpova, Eric and Wendy Schmidt Center </div> </div> <div class="hero-section__date"> <div class="block block-layout-builder block-field-blocknodelong-storycreated"> <span class="field field--name-created field--type-created field--label-hidden"><time datetime="2024-07-25T12:05:54-04:00" title="Thursday, July 25, 2024 - 12:05" class="datetime">July 25, 2024</time> </span> </div> </div> </div> <div class="hero-section__right col-6"> <div class="hero-section__image"> <div class="block block-layout-builder block-field-blocknodelong-storyfield-image"> <div class="field field--name-field-image field--type-entity-reference field--label-hidden field__item"> <article class="media media--type-image media--view-mode-multiple-content-types-header"> <div class="field field--name-field-media-image field--type-image field--label-hidden field__item"> <picture> <source srcset="/files/styles/multiple_ct_header_desktop_xl/public/longstory/669e9848082749391a41623b_2048px-Breast_DCIS_Cribriform_PA_crop.png?itok=G9ymHeqV 1x" media="all and (min-width: 1921px)" type="image/png" width="754" height="503"> <source srcset="/files/styles/multiple_ct_header_desktop_xl/public/longstory/669e9848082749391a41623b_2048px-Breast_DCIS_Cribriform_PA_crop.png?itok=G9ymHeqV 1x" media="all and (min-width: 1601px) and (max-width: 1920px)" type="image/png" width="754" height="503"> <source srcset="/files/styles/multiple_ct_header_desktop/public/longstory/669e9848082749391a41623b_2048px-Breast_DCIS_Cribriform_PA_crop.png?itok=84RCOmuz 1x" media="all and (min-width: 1340px) and (max-width: 1600px)" type="image/png" width="736" height="520"> <source srcset="/files/styles/multiple_ct_header_laptop/public/longstory/669e9848082749391a41623b_2048px-Breast_DCIS_Cribriform_PA_crop.png?itok=QdcaSuCr 1x" media="all and (min-width: 800px) and (max-width: 1339px)" type="image/png" width="641" height="451"> <source srcset="/files/styles/multiple_ct_header_tablet/public/longstory/669e9848082749391a41623b_2048px-Breast_DCIS_Cribriform_PA_crop.png?itok=ApW35-G0 1x" media="all and (min-width: 540px) and (max-width: 799px)" type="image/png" width="706" height="417"> <source srcset="/files/styles/multiple_ct_header_phone/public/longstory/669e9848082749391a41623b_2048px-Breast_DCIS_Cribriform_PA_crop.png?itok=DjJynAMd 1x" media="all and (max-width: 539px)" type="image/png" width="499" height="294"> <img loading="eager" width="499" height="294" src="/files/styles/multiple_ct_header_phone/public/longstory/669e9848082749391a41623b_2048px-Breast_DCIS_Cribriform_PA_crop.png?itok=DjJynAMd" alt="A histopathology image of ductal carcinoma in situ (DCIS) of the breast. The image shows a section of breast tissue stained with hematoxylin and eosin, revealing clusters of abnormal cells within the milk ducts. The ducts are filled with atypical cells exhibiting a cribriform pattern, characterized by round to oval spaces within the neoplastic cell clusters. The surrounding tissue appears dense and fibrous." title="A histopathology image of ductal carcinoma in situ (DCIS) of the breast. The image shows a section of breast tissue stained with hematoxylin and eosin, revealing clusters of abnormal cells within the milk ducts. The ducts are filled with atypical cells exhibiting a cribriform pattern, characterized by round to oval spaces within the neoplastic cell clusters. The surrounding tissue appears dense and fibrous." typeof="foaf:Image"> </picture> </div> <div class="media-caption"> <div class="media-caption__credit"> Credit: Sarahkayb, distributed under a CC BY-SA 4.0 license </div> <div class="media-caption__description"> A microscope image of the cribiform variant of ductal carcinoma in situ (DCIS) </div> </div> </article> </div> </div> </div> </div> </div> </div> <div class="content-section container"> <div class="content-section__main"> <div class="block block-better-social-sharing-buttons block-social-sharing-buttons-block"> <div style="display: none"><link rel="preload" href="/modules/contrib/better_social_sharing_buttons/assets/dist/sprites/social-icons--no-color.svg" as="image" type="image/svg+xml" crossorigin="anonymous"></div> <div class="social-sharing-buttons"> <a href="https://www.facebook.com/sharer/sharer.php?u=/taxonomy/term/2441/feed&amp;title=" target="_blank" title="Share to Facebook" aria-label="Share to Facebook" 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href="/bios/caroline-uhler">Caroline Uhler</a></div> </div> </div> </div> </div> <div class="field__item"> <div class="paragraph paragraph--type--sidebar-menu sidebar-menu"> <div class="sidebar-menu__col"> <div class="clearfix text-formatted field field--name-field-heading field--type-text field--label-hidden field__item"><p>Related programs</p> </div> <div class="field field--name-field-links field--type-link field--label-hidden field__items"> <div class="field__item"><a href="https://www.ericandwendyschmidtcenter.org/">Eric and Wendy Schmidt Center</a></div> </div> </div> </div> </div> <div class="field__item"> <div class="paragraph paragraph--type--sidebar-articles sidebar-articles"> <div class="sidebar-articles__col"> <div class="clearfix text-formatted field field--name-field-heading field--type-text field--label-hidden field__item"><p>Related news</p> </div> <div class="field field--name-field-content-reference field--type-entity-reference field--label-hidden field__items"> <div 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srcset="/files/styles/multiple_ct_sidebar_link_with_image_desktop/public/news/images/2022/InfiniteWidth_main.jpg?h=9423a5c0&amp;itok=kBya0HqH 1x" media="all and (min-width: 800px) and (max-width: 1339px)" type="image/jpeg" width="87" height="104"> <source srcset="/files/styles/multiple_ct_sidebar_link_with_image_tablet/public/news/images/2022/InfiniteWidth_main.jpg?h=9423a5c0&amp;itok=RQpbxxPF 1x" media="all and (min-width: 540px) and (max-width: 799px)" type="image/jpeg" width="285" height="186"> <source srcset="/files/styles/multiple_ct_sidebar_link_with_image_phone/public/news/images/2022/InfiniteWidth_main.jpg?h=9423a5c0&amp;itok=sUasmJ8W 1x" media="all and (max-width: 539px)" type="image/jpeg" width="220" height="186"> <img loading="eager" width="220" height="186" src="/files/styles/multiple_ct_sidebar_link_with_image_phone/public/news/images/2022/InfiniteWidth_main.jpg?h=9423a5c0&amp;itok=sUasmJ8W" alt="Caroline Uhler, Adit Radhakrishnan" title="Caroline Uhler, Adit Radhakrishnan" typeof="foaf:Image"> </picture></a> </div> </article> </div> <div class="node__content"> <a href="/news/schmidt-center-scientists-develop-robust-machine-learning-approach-virtual-drug-screening-and" class="node__title"><span class="field field--name-title field--type-string field--label-hidden">Schmidt Center scientists develop a robust machine learning approach for virtual drug screening and other applications</span> </a> </div> </article> </div> </div> </div> </div> </div> </div> <div class="clearfix text-formatted field field--name-field-text field--type-text-long field--label-hidden field__item"><p>Ductal carcinoma in situ (DCIS), a pre-invasive tumor, accounts for about 25 percent of breast cancer diagnoses, a leading cause of cancer death. While doctors generally recommend treatment, they lack the appropriate evidence to reliably decide which tumor will remain benign and which might turn into a life-threatening invasive ductal carcinoma (IDC), resulting in high rates of overtreatment.</p> <p>The current methods for understanding DCIS progression include manual assessment of nuclear morphology by pathologists, sequencing-based approaches, spatial transcriptomics, and highly multiplexed imaging. However, these methods face challenges due to cost, complexity, and limited information about the tissue microenvironment, which is necessary for accurate DCIS progression assessment.</p> <p>In a new study published today in <a href="https://www.nature.com/articles/s41467-024-50285-1" target="_blank"><em>Nature Communications</em></a>, researchers at the ӳý of MIT and Harvard and the Paul Scherrer Institute at ETH Zürich in Switzerland have found a simple and effective method of predicting the disease stage of DCIS, which could ultimately lead to more informed recommendations for DCIS breast cancer treatment. Their analysis demonstrates that, without the need of multiple stains or sequencing-based technologies, chromatin imaging provides sufficient information about cell states and tissue organization to accurately predict tumor stages.</p> <p>The study stems from a long-term collaboration combining AI and biology between <a href="/node/777156">Caroline Uhler</a>, who directs the <a href="https://ericandwendyschmidtcenter.org/" target="_blank">Eric and Wendy Schmidt Center</a> at the ӳý, and is a professor in the Department of Electrical Engineering and Computer Science as well as the Institute for Data, Systems, and Society at MIT; and GV Shivashankar, professor of mechanogenomics and head of the Laboratory of Nanoscale Biology at the Paul Scherrer Institute.</p> <p>Shivashankar’s lab is interested in understanding the underlying mechanisms for cell-state transitions and the association with disease states. They aim to improve early disease diagnostics by using multi-disciplinary approaches, such as single-cell imaging, functional genomics, and machine learning, to study the coupling between cell mechanics and genome organization in tissue contexts.</p> <p>“Building on our previous studies with the Schmidt Center, we’re thrilled that we found a simple way to predict disease stage through the statistics of cell states, and we look forward to seeing how this can be applied to DCIS treatment,” said co-senior author Shivashankar.</p> <p>The study aligns with the Schmidt Center’s goal of fostering a two-way street between biology and machine learning to advance biomedical discoveries and provide insights into how cells work in health and disease.</p> <p>“As our research on DCIS shows, it’s important to create novel machine learning methods to analyze biomedical data,” said co-senior author Uhler. “Using machine learning to analyze data can lead to more accurate and simpler solutions for important biological questions, ultimately leading to better disease diagnosis and treatment.”</p> <p>“Collaborating with Shivashankar’s lab, which I have done on several projects, provides me with a unique opportunity to develop computational methods for important biological problems,” said study first author Xinyi Zhang, a graduate student at MIT and the Schmidt Center. “I’m able to see what the real roadblocks and challenges are in the biomedical space and start thinking about what to develop next.”</p> <p>Using unsupervised representation learning methods, the scientists analyzed 560 samples from 122 patients at 11 stages of DCIS progression from normal to cancerous breast tissues. They identified eight disease-relevant cell states based on nuclear morphology and chromatin organization, and found that all eight cell states exist in all disease stages, but with different abundances.&nbsp;</p> <p>Based on the learned representations, the researchers then arranged the cell types from healthy to cancerous, finding that the order matched the natural progression of the disease, even though the model wasn't trained directly on disease stages. The study also demonstrated that spatial organization of cells near breast ducts and the co-localization of cell states can better predict disease stage compared to cell state abundance alone. This approach highlighted distinct cell states, their relative abundances, and their spatial neighborhoods, indicating their potential as biomarkers for cancer staging.</p> <p>Although follow-up clinical trials with longitudinal tracking of DCIS patients are needed, this study demonstrated that high-dimensional AI-inferred features based on simple and cheap chromatin images can provide valuable insights into tumor progression. Uhler noted that this study introduces a new approach to exploring disease progression within a tumor microenvironment, specifically by leveraging machine learning and computational methods to extract meaningful information from complex chromatin images, without the need for extensive staining or sequencing.&nbsp;</p> <p>By focusing on one of the Schmidt Center’s core missions – developing the foundations of machine learning to understand the programs of life – this study offers simple and cost-effective solutions for disease prognosis and treatment.</p> <p><em>Adapted from <a href="https://www.ericandwendyschmidtcenter.org/updates/researchers-identify-cheap-and-effective-biomarkers-for-dcis-tumor-stage" target="_blank">a story published by the Eric and Wendy Schmidt Center</a></em>.</p> </div> </div> </div> <div class="field__item"> <div class="paragraph paragraph--type--table-outro paragraph--view-mode--default"> <div class="field field--name-field-paragraph field--type-entity-reference-revisions field--label-hidden field__items"> <div class="field__item"> <div class="paragraph paragraph--type--table-outro-row paragraph--view-mode--default"> <div class="clearfix text-formatted field field--name-field-heading field--type-text field--label-hidden field__item"><p>Funding</p> </div> <div class="clearfix text-formatted field field--name-field-text field--type-text-long field--label-hidden field__item"><p>Support for this study was provided by the Eric and Wendy Schmidt Center, the National Center for Complementary and Integrative Health, the Office of Naval Research, the Swiss National Foundation, and other sources.</p> </div> </div> </div> <div class="field__item"> <div class="paragraph paragraph--type--table-outro-row paragraph--view-mode--default"> <div class="clearfix text-formatted field field--name-field-heading field--type-text field--label-hidden field__item"><p>Paper cited</p> </div> <div class="clearfix text-formatted field field--name-field-text field--type-text-long field--label-hidden field__item"><p>Zhang X et al.&nbsp;<a href="https://www.nature.com/articles/s41467-024-50285-1" target="_blank">Unsupervised representation learning of chromatin images identifies changes in cell state and tissue organization in DCIS</a>. <em>Nature Communications</em>. Online July 20, 2024. DOI:&nbsp;10.1038/s41467-024-50285-1.</p> </div> </div> </div> </div> </div> </div> </div> </div> </div> </div> <div class="content-section container"> <div class="content-section__main"> <div class="block-node-broad-tags block block-layout-builder block-field-blocknodelong-storyfield-broad-tags"> <div class="block-node-broad-tags__row"> <div class="block-node-broad-tags__title">Tags:</div> <div class="field field--name-field-broad-tags field--type-entity-reference field--label-hidden field__items"> <div class="field__item"><a href="/broad-tags/eric-and-wendy-schmidt-center" hreflang="en">Eric and Wendy Schmidt Center</a></div> <div class="field__item"><a href="/broad-tags/machine-learning" hreflang="en">Machine learning</a></div> <div class="field__item"><a href="/broad-tags/cancer" hreflang="en">Cancer</a></div> <div class="field__item"><a href="/broad-tags/data-science-0" hreflang="en">Data science</a></div> <div class="field__item"><a href="/broad-tags/machine-learning-0" hreflang="en">Machine Learning</a></div> <div class="field__item"><a href="/broad-tags/caroline-uhler" hreflang="en">Caroline Uhler</a></div> </div> </div> </div> </div> </div> Thu, 25 Jul 2024 16:05:54 +0000 tulrich@broadinstitute.org 5557156 at Researchers roll out a more accurate way to estimate genetic risks of disease /news/researchers-roll-out-more-accurate-way-estimate-genetic-risks-disease <span class="field field--name-title field--type-string field--label-hidden"><h1>Researchers identify cheap and effective biomarkers for DCIS tumor stage</h1> </span> <span class="field field--name-uid field--type-entity-reference field--label-hidden"> <span>By Tom Ulrich</span> </span> <span class="field field--name-created field--type-created field--label-hidden"><time datetime="2024-07-25T12:05:54-04:00" class="datetime">July 25, 2024</time> </span> <div class="hero-section container"> <div class="hero-section__row row"> <div class="hero-section__content hero-section__content_left col-6"> <div class="hero-section__breadcrumbs"> <div class="block block-system block-system-breadcrumb-block"> <nav class="breadcrumb" role="navigation" aria-labelledby="system-breadcrumb"> <h2 id="system-breadcrumb" class="visually-hidden">Breadcrumb</h2> <ol> <li> <a href="/">Home</a> </li> <li> <a href="/news">News</a> </li> </ol> </nav> </div> </div> <div class="hero-section__title"> <div class="block block-layout-builder block-field-blocknodelong-storytitle"> <span class="field field--name-title field--type-string field--label-hidden"><h1>Researchers identify cheap and effective biomarkers for DCIS tumor stage</h1> </span> </div> </div> <div class="hero-section__description"> <div class="block block-layout-builder block-field-blocknodelong-storybody"> <div class="clearfix text-formatted field field--name-body field--type-text-with-summary field--label-hidden field__item"><p>New study shows how leveraging unsupervised learning can decode DCIS progression from chromatin images.</p> </div> </div> </div> <div class="hero-section__author"> <div class="block block-layout-builder block-extra-field-blocknodelong-storyextra-field-author-custom"> By Nadya Karpova, Eric and Wendy Schmidt Center </div> </div> <div class="hero-section__date"> <div class="block block-layout-builder block-field-blocknodelong-storycreated"> <span class="field field--name-created field--type-created field--label-hidden"><time datetime="2024-07-25T12:05:54-04:00" title="Thursday, July 25, 2024 - 12:05" class="datetime">July 25, 2024</time> </span> </div> </div> </div> <div class="hero-section__right col-6"> <div class="hero-section__image"> <div class="block block-layout-builder block-field-blocknodelong-storyfield-image"> <div class="field field--name-field-image field--type-entity-reference field--label-hidden field__item"> <article class="media media--type-image media--view-mode-multiple-content-types-header"> <div class="field field--name-field-media-image field--type-image field--label-hidden field__item"> <picture> <source srcset="/files/styles/multiple_ct_header_desktop_xl/public/longstory/669e9848082749391a41623b_2048px-Breast_DCIS_Cribriform_PA_crop.png?itok=G9ymHeqV 1x" media="all and (min-width: 1921px)" type="image/png" width="754" height="503"> <source srcset="/files/styles/multiple_ct_header_desktop_xl/public/longstory/669e9848082749391a41623b_2048px-Breast_DCIS_Cribriform_PA_crop.png?itok=G9ymHeqV 1x" media="all and (min-width: 1601px) and (max-width: 1920px)" type="image/png" width="754" height="503"> <source srcset="/files/styles/multiple_ct_header_desktop/public/longstory/669e9848082749391a41623b_2048px-Breast_DCIS_Cribriform_PA_crop.png?itok=84RCOmuz 1x" media="all and (min-width: 1340px) and (max-width: 1600px)" type="image/png" width="736" height="520"> <source srcset="/files/styles/multiple_ct_header_laptop/public/longstory/669e9848082749391a41623b_2048px-Breast_DCIS_Cribriform_PA_crop.png?itok=QdcaSuCr 1x" media="all and (min-width: 800px) and (max-width: 1339px)" type="image/png" width="641" height="451"> <source srcset="/files/styles/multiple_ct_header_tablet/public/longstory/669e9848082749391a41623b_2048px-Breast_DCIS_Cribriform_PA_crop.png?itok=ApW35-G0 1x" media="all and (min-width: 540px) and (max-width: 799px)" type="image/png" width="706" height="417"> <source srcset="/files/styles/multiple_ct_header_phone/public/longstory/669e9848082749391a41623b_2048px-Breast_DCIS_Cribriform_PA_crop.png?itok=DjJynAMd 1x" media="all and (max-width: 539px)" type="image/png" width="499" height="294"> <img loading="eager" width="499" height="294" src="/files/styles/multiple_ct_header_phone/public/longstory/669e9848082749391a41623b_2048px-Breast_DCIS_Cribriform_PA_crop.png?itok=DjJynAMd" alt="A histopathology image of ductal carcinoma in situ (DCIS) of the breast. The image shows a section of breast tissue stained with hematoxylin and eosin, revealing clusters of abnormal cells within the milk ducts. The ducts are filled with atypical cells exhibiting a cribriform pattern, characterized by round to oval spaces within the neoplastic cell clusters. The surrounding tissue appears dense and fibrous." title="A histopathology image of ductal carcinoma in situ (DCIS) of the breast. The image shows a section of breast tissue stained with hematoxylin and eosin, revealing clusters of abnormal cells within the milk ducts. The ducts are filled with atypical cells exhibiting a cribriform pattern, characterized by round to oval spaces within the neoplastic cell clusters. The surrounding tissue appears dense and fibrous." typeof="foaf:Image"> </picture> </div> <div class="media-caption"> <div class="media-caption__credit"> Credit: Sarahkayb, distributed under a CC BY-SA 4.0 license </div> <div class="media-caption__description"> A microscope image of the cribiform variant of ductal carcinoma in situ (DCIS) </div> </div> </article> </div> </div> </div> </div> </div> </div> <div class="content-section container"> <div class="content-section__main"> <div class="block block-better-social-sharing-buttons block-social-sharing-buttons-block"> <div style="display: none"><link rel="preload" href="/modules/contrib/better_social_sharing_buttons/assets/dist/sprites/social-icons--no-color.svg" as="image" type="image/svg+xml" crossorigin="anonymous"></div> <div class="social-sharing-buttons"> <a href="https://www.facebook.com/sharer/sharer.php?u=/taxonomy/term/2441/feed&amp;title=" target="_blank" title="Share to Facebook" aria-label="Share to Facebook" 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href="/modules/contrib/better_social_sharing_buttons/assets/dist/sprites/social-icons--no-color.svg#email" /> </svg> </a> </div> </div> <div class="block block-layout-builder block-field-blocknodelong-storyfield-content-paragraphs"> <div class="field field--name-field-content-paragraphs field--type-entity-reference-revisions field--label-hidden field__items"> <div class="field__item"> <div class="paragraph paragraph--type--text-with-sidebar text-with-sidebar"> <div class="field field--name-field-sidebar field--type-entity-reference-revisions field--label-hidden field__items"> <div class="field__item"> <div class="paragraph paragraph--type--sidebar-menu sidebar-menu"> <div class="sidebar-menu__col"> <div class="clearfix text-formatted field field--name-field-heading field--type-text field--label-hidden field__item"><p>Related people</p> </div> <div class="field field--name-field-links field--type-link field--label-hidden field__items"> <div class="field__item"><a href="/bios/caroline-uhler">Caroline Uhler</a></div> </div> </div> </div> </div> <div class="field__item"> <div class="paragraph paragraph--type--sidebar-menu sidebar-menu"> <div class="sidebar-menu__col"> <div class="clearfix text-formatted field field--name-field-heading field--type-text field--label-hidden field__item"><p>Related programs</p> </div> <div class="field field--name-field-links field--type-link field--label-hidden field__items"> <div class="field__item"><a href="https://www.ericandwendyschmidtcenter.org/">Eric and Wendy Schmidt Center</a></div> </div> </div> </div> </div> <div class="field__item"> <div class="paragraph paragraph--type--sidebar-articles sidebar-articles"> <div class="sidebar-articles__col"> <div class="clearfix text-formatted field field--name-field-heading field--type-text field--label-hidden field__item"><p>Related news</p> </div> <div class="field field--name-field-content-reference field--type-entity-reference field--label-hidden field__items"> <div 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class="media media--type-image media--view-mode-multiple-ct-sidebar-link-with-image"> <div class="field field--name-field-media-image field--type-image field--label-hidden field__item"> <a href="/news/new-method-identifies-spatial-biomarkers-alzheimer%E2%80%99s-disease-progression-animal-model"><picture> <source srcset="/files/styles/multiple_ct_sidebar_link_with_image_desktop_xl/public/news/images/2022/d13c0plaque_edited.png?h=d3e04ee7&amp;itok=csBD6rwP 1x" media="all and (min-width: 1921px)" type="image/png" width="104" height="104"> <source srcset="/files/styles/multiple_ct_sidebar_link_with_image_desktop_xl/public/news/images/2022/d13c0plaque_edited.png?h=d3e04ee7&amp;itok=csBD6rwP 1x" media="all and (min-width: 1601px) and (max-width: 1920px)" type="image/png" width="104" height="104"> <source srcset="/files/styles/multiple_ct_sidebar_link_with_image_desktop/public/news/images/2022/d13c0plaque_edited.png?h=d3e04ee7&amp;itok=fDjCeHMH 1x" media="all and (min-width: 1340px) and (max-width: 1600px)" type="image/png" width="87" height="104"> <source srcset="/files/styles/multiple_ct_sidebar_link_with_image_desktop/public/news/images/2022/d13c0plaque_edited.png?h=d3e04ee7&amp;itok=fDjCeHMH 1x" media="all and (min-width: 800px) and (max-width: 1339px)" type="image/png" width="87" height="104"> <source srcset="/files/styles/multiple_ct_sidebar_link_with_image_tablet/public/news/images/2022/d13c0plaque_edited.png?h=d3e04ee7&amp;itok=tY_hW8aW 1x" media="all and (min-width: 540px) and (max-width: 799px)" type="image/png" width="285" height="186"> <source srcset="/files/styles/multiple_ct_sidebar_link_with_image_phone/public/news/images/2022/d13c0plaque_edited.png?h=d3e04ee7&amp;itok=umbaEnXX 1x" media="all and (max-width: 539px)" type="image/png" width="220" height="186"> <img loading="eager" width="220" height="186" src="/files/styles/multiple_ct_sidebar_link_with_image_phone/public/news/images/2022/d13c0plaque_edited.png?h=d3e04ee7&amp;itok=umbaEnXX" alt="Chromatin 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srcset="/files/styles/multiple_ct_sidebar_link_with_image_desktop/public/news/images/2022/InfiniteWidth_main.jpg?h=9423a5c0&amp;itok=kBya0HqH 1x" media="all and (min-width: 800px) and (max-width: 1339px)" type="image/jpeg" width="87" height="104"> <source srcset="/files/styles/multiple_ct_sidebar_link_with_image_tablet/public/news/images/2022/InfiniteWidth_main.jpg?h=9423a5c0&amp;itok=RQpbxxPF 1x" media="all and (min-width: 540px) and (max-width: 799px)" type="image/jpeg" width="285" height="186"> <source srcset="/files/styles/multiple_ct_sidebar_link_with_image_phone/public/news/images/2022/InfiniteWidth_main.jpg?h=9423a5c0&amp;itok=sUasmJ8W 1x" media="all and (max-width: 539px)" type="image/jpeg" width="220" height="186"> <img loading="eager" width="220" height="186" src="/files/styles/multiple_ct_sidebar_link_with_image_phone/public/news/images/2022/InfiniteWidth_main.jpg?h=9423a5c0&amp;itok=sUasmJ8W" alt="Caroline Uhler, Adit Radhakrishnan" title="Caroline Uhler, Adit Radhakrishnan" typeof="foaf:Image"> </picture></a> </div> </article> </div> <div class="node__content"> <a href="/news/schmidt-center-scientists-develop-robust-machine-learning-approach-virtual-drug-screening-and" class="node__title"><span class="field field--name-title field--type-string field--label-hidden">Schmidt Center scientists develop a robust machine learning approach for virtual drug screening and other applications</span> </a> </div> </article> </div> </div> </div> </div> </div> </div> <div class="clearfix text-formatted field field--name-field-text field--type-text-long field--label-hidden field__item"><p>Ductal carcinoma in situ (DCIS), a pre-invasive tumor, accounts for about 25 percent of breast cancer diagnoses, a leading cause of cancer death. While doctors generally recommend treatment, they lack the appropriate evidence to reliably decide which tumor will remain benign and which might turn into a life-threatening invasive ductal carcinoma (IDC), resulting in high rates of overtreatment.</p> <p>The current methods for understanding DCIS progression include manual assessment of nuclear morphology by pathologists, sequencing-based approaches, spatial transcriptomics, and highly multiplexed imaging. However, these methods face challenges due to cost, complexity, and limited information about the tissue microenvironment, which is necessary for accurate DCIS progression assessment.</p> <p>In a new study published today in <a href="https://www.nature.com/articles/s41467-024-50285-1" target="_blank"><em>Nature Communications</em></a>, researchers at the ӳý of MIT and Harvard and the Paul Scherrer Institute at ETH Zürich in Switzerland have found a simple and effective method of predicting the disease stage of DCIS, which could ultimately lead to more informed recommendations for DCIS breast cancer treatment. Their analysis demonstrates that, without the need of multiple stains or sequencing-based technologies, chromatin imaging provides sufficient information about cell states and tissue organization to accurately predict tumor stages.</p> <p>The study stems from a long-term collaboration combining AI and biology between <a href="/node/777156">Caroline Uhler</a>, who directs the <a href="https://ericandwendyschmidtcenter.org/" target="_blank">Eric and Wendy Schmidt Center</a> at the ӳý, and is a professor in the Department of Electrical Engineering and Computer Science as well as the Institute for Data, Systems, and Society at MIT; and GV Shivashankar, professor of mechanogenomics and head of the Laboratory of Nanoscale Biology at the Paul Scherrer Institute.</p> <p>Shivashankar’s lab is interested in understanding the underlying mechanisms for cell-state transitions and the association with disease states. They aim to improve early disease diagnostics by using multi-disciplinary approaches, such as single-cell imaging, functional genomics, and machine learning, to study the coupling between cell mechanics and genome organization in tissue contexts.</p> <p>“Building on our previous studies with the Schmidt Center, we’re thrilled that we found a simple way to predict disease stage through the statistics of cell states, and we look forward to seeing how this can be applied to DCIS treatment,” said co-senior author Shivashankar.</p> <p>The study aligns with the Schmidt Center’s goal of fostering a two-way street between biology and machine learning to advance biomedical discoveries and provide insights into how cells work in health and disease.</p> <p>“As our research on DCIS shows, it’s important to create novel machine learning methods to analyze biomedical data,” said co-senior author Uhler. “Using machine learning to analyze data can lead to more accurate and simpler solutions for important biological questions, ultimately leading to better disease diagnosis and treatment.”</p> <p>“Collaborating with Shivashankar’s lab, which I have done on several projects, provides me with a unique opportunity to develop computational methods for important biological problems,” said study first author Xinyi Zhang, a graduate student at MIT and the Schmidt Center. “I’m able to see what the real roadblocks and challenges are in the biomedical space and start thinking about what to develop next.”</p> <p>Using unsupervised representation learning methods, the scientists analyzed 560 samples from 122 patients at 11 stages of DCIS progression from normal to cancerous breast tissues. They identified eight disease-relevant cell states based on nuclear morphology and chromatin organization, and found that all eight cell states exist in all disease stages, but with different abundances.&nbsp;</p> <p>Based on the learned representations, the researchers then arranged the cell types from healthy to cancerous, finding that the order matched the natural progression of the disease, even though the model wasn't trained directly on disease stages. The study also demonstrated that spatial organization of cells near breast ducts and the co-localization of cell states can better predict disease stage compared to cell state abundance alone. This approach highlighted distinct cell states, their relative abundances, and their spatial neighborhoods, indicating their potential as biomarkers for cancer staging.</p> <p>Although follow-up clinical trials with longitudinal tracking of DCIS patients are needed, this study demonstrated that high-dimensional AI-inferred features based on simple and cheap chromatin images can provide valuable insights into tumor progression. Uhler noted that this study introduces a new approach to exploring disease progression within a tumor microenvironment, specifically by leveraging machine learning and computational methods to extract meaningful information from complex chromatin images, without the need for extensive staining or sequencing.&nbsp;</p> <p>By focusing on one of the Schmidt Center’s core missions – developing the foundations of machine learning to understand the programs of life – this study offers simple and cost-effective solutions for disease prognosis and treatment.</p> <p><em>Adapted from <a href="https://www.ericandwendyschmidtcenter.org/updates/researchers-identify-cheap-and-effective-biomarkers-for-dcis-tumor-stage" target="_blank">a story published by the Eric and Wendy Schmidt Center</a></em>.</p> </div> </div> </div> <div class="field__item"> <div class="paragraph paragraph--type--table-outro paragraph--view-mode--default"> <div class="field field--name-field-paragraph field--type-entity-reference-revisions field--label-hidden field__items"> <div class="field__item"> <div class="paragraph paragraph--type--table-outro-row paragraph--view-mode--default"> <div class="clearfix text-formatted field field--name-field-heading field--type-text field--label-hidden field__item"><p>Funding</p> </div> <div class="clearfix text-formatted field field--name-field-text field--type-text-long field--label-hidden field__item"><p>Support for this study was provided by the Eric and Wendy Schmidt Center, the National Center for Complementary and Integrative Health, the Office of Naval Research, the Swiss National Foundation, and other sources.</p> </div> </div> </div> <div class="field__item"> <div class="paragraph paragraph--type--table-outro-row paragraph--view-mode--default"> <div class="clearfix text-formatted field field--name-field-heading field--type-text field--label-hidden field__item"><p>Paper cited</p> </div> <div class="clearfix text-formatted field field--name-field-text field--type-text-long field--label-hidden field__item"><p>Zhang X et al.&nbsp;<a href="https://www.nature.com/articles/s41467-024-50285-1" target="_blank">Unsupervised representation learning of chromatin images identifies changes in cell state and tissue organization in DCIS</a>. <em>Nature Communications</em>. Online July 20, 2024. DOI:&nbsp;10.1038/s41467-024-50285-1.</p> </div> </div> </div> </div> </div> </div> </div> </div> </div> </div> <div class="content-section container"> <div class="content-section__main"> <div class="block-node-broad-tags block block-layout-builder block-field-blocknodelong-storyfield-broad-tags"> <div class="block-node-broad-tags__row"> <div class="block-node-broad-tags__title">Tags:</div> <div class="field field--name-field-broad-tags field--type-entity-reference field--label-hidden field__items"> <div class="field__item"><a href="/broad-tags/eric-and-wendy-schmidt-center" hreflang="en">Eric and Wendy Schmidt Center</a></div> <div class="field__item"><a href="/broad-tags/machine-learning" hreflang="en">Machine learning</a></div> <div class="field__item"><a href="/broad-tags/cancer" hreflang="en">Cancer</a></div> <div class="field__item"><a href="/broad-tags/data-science-0" hreflang="en">Data science</a></div> <div class="field__item"><a href="/broad-tags/machine-learning-0" hreflang="en">Machine Learning</a></div> <div class="field__item"><a href="/broad-tags/caroline-uhler" hreflang="en">Caroline Uhler</a></div> </div> </div> </div> </div> </div> Tue, 19 Mar 2024 15:00:00 +0000 chenders@broadinstitute.org 5556701 at #WhyIScience Q&A: A software engineer develops computational tools for psychiatric and brain research /news/whyiscience-qa-software-engineer-develops-computational-tools-psychiatric-and-brain-research <span class="field field--name-title field--type-string field--label-hidden"><h1>Researchers identify cheap and effective biomarkers for DCIS tumor stage</h1> </span> <span class="field field--name-uid field--type-entity-reference field--label-hidden"> <span>By Tom Ulrich</span> </span> <span class="field field--name-created field--type-created field--label-hidden"><time datetime="2024-07-25T12:05:54-04:00" class="datetime">July 25, 2024</time> </span> <div class="hero-section container"> <div class="hero-section__row row"> <div class="hero-section__content hero-section__content_left col-6"> <div class="hero-section__breadcrumbs"> <div class="block block-system block-system-breadcrumb-block"> <nav class="breadcrumb" role="navigation" aria-labelledby="system-breadcrumb"> <h2 id="system-breadcrumb" class="visually-hidden">Breadcrumb</h2> <ol> <li> <a href="/">Home</a> </li> <li> <a href="/news">News</a> </li> </ol> </nav> </div> </div> <div class="hero-section__title"> <div class="block block-layout-builder block-field-blocknodelong-storytitle"> <span class="field field--name-title field--type-string field--label-hidden"><h1>Researchers identify cheap and effective biomarkers for DCIS tumor stage</h1> </span> </div> </div> <div class="hero-section__description"> <div class="block block-layout-builder block-field-blocknodelong-storybody"> <div class="clearfix text-formatted field field--name-body field--type-text-with-summary field--label-hidden field__item"><p>New study shows how leveraging unsupervised learning can decode DCIS progression from chromatin images.</p> </div> </div> </div> <div class="hero-section__author"> <div class="block block-layout-builder block-extra-field-blocknodelong-storyextra-field-author-custom"> By Nadya Karpova, Eric and Wendy Schmidt Center </div> </div> <div class="hero-section__date"> <div class="block block-layout-builder block-field-blocknodelong-storycreated"> <span class="field field--name-created field--type-created field--label-hidden"><time datetime="2024-07-25T12:05:54-04:00" title="Thursday, July 25, 2024 - 12:05" class="datetime">July 25, 2024</time> </span> </div> </div> </div> <div class="hero-section__right col-6"> <div class="hero-section__image"> <div class="block block-layout-builder block-field-blocknodelong-storyfield-image"> <div class="field field--name-field-image field--type-entity-reference field--label-hidden field__item"> <article class="media media--type-image media--view-mode-multiple-content-types-header"> <div class="field field--name-field-media-image field--type-image field--label-hidden field__item"> <picture> <source srcset="/files/styles/multiple_ct_header_desktop_xl/public/longstory/669e9848082749391a41623b_2048px-Breast_DCIS_Cribriform_PA_crop.png?itok=G9ymHeqV 1x" media="all and (min-width: 1921px)" type="image/png" width="754" height="503"> <source srcset="/files/styles/multiple_ct_header_desktop_xl/public/longstory/669e9848082749391a41623b_2048px-Breast_DCIS_Cribriform_PA_crop.png?itok=G9ymHeqV 1x" media="all and (min-width: 1601px) and (max-width: 1920px)" type="image/png" width="754" height="503"> <source srcset="/files/styles/multiple_ct_header_desktop/public/longstory/669e9848082749391a41623b_2048px-Breast_DCIS_Cribriform_PA_crop.png?itok=84RCOmuz 1x" media="all and (min-width: 1340px) and (max-width: 1600px)" type="image/png" width="736" height="520"> <source srcset="/files/styles/multiple_ct_header_laptop/public/longstory/669e9848082749391a41623b_2048px-Breast_DCIS_Cribriform_PA_crop.png?itok=QdcaSuCr 1x" media="all and (min-width: 800px) and (max-width: 1339px)" type="image/png" width="641" height="451"> <source srcset="/files/styles/multiple_ct_header_tablet/public/longstory/669e9848082749391a41623b_2048px-Breast_DCIS_Cribriform_PA_crop.png?itok=ApW35-G0 1x" media="all and (min-width: 540px) and (max-width: 799px)" type="image/png" width="706" height="417"> <source srcset="/files/styles/multiple_ct_header_phone/public/longstory/669e9848082749391a41623b_2048px-Breast_DCIS_Cribriform_PA_crop.png?itok=DjJynAMd 1x" media="all and (max-width: 539px)" type="image/png" width="499" height="294"> <img loading="eager" width="499" height="294" src="/files/styles/multiple_ct_header_phone/public/longstory/669e9848082749391a41623b_2048px-Breast_DCIS_Cribriform_PA_crop.png?itok=DjJynAMd" alt="A histopathology image of ductal carcinoma in situ (DCIS) of the breast. The image shows a section of breast tissue stained with hematoxylin and eosin, revealing clusters of abnormal cells within the milk ducts. The ducts are filled with atypical cells exhibiting a cribriform pattern, characterized by round to oval spaces within the neoplastic cell clusters. The surrounding tissue appears dense and fibrous." title="A histopathology image of ductal carcinoma in situ (DCIS) of the breast. The image shows a section of breast tissue stained with hematoxylin and eosin, revealing clusters of abnormal cells within the milk ducts. The ducts are filled with atypical cells exhibiting a cribriform pattern, characterized by round to oval spaces within the neoplastic cell clusters. The surrounding tissue appears dense and fibrous." typeof="foaf:Image"> </picture> </div> <div class="media-caption"> <div class="media-caption__credit"> Credit: Sarahkayb, distributed under a CC BY-SA 4.0 license </div> <div class="media-caption__description"> A microscope image of the cribiform variant of ductal carcinoma in situ (DCIS) </div> </div> </article> </div> </div> </div> </div> </div> </div> <div class="content-section container"> <div class="content-section__main"> <div class="block block-better-social-sharing-buttons block-social-sharing-buttons-block"> <div style="display: none"><link rel="preload" href="/modules/contrib/better_social_sharing_buttons/assets/dist/sprites/social-icons--no-color.svg" as="image" type="image/svg+xml" crossorigin="anonymous"></div> <div class="social-sharing-buttons"> <a href="https://www.facebook.com/sharer/sharer.php?u=/taxonomy/term/2441/feed&amp;title=" target="_blank" title="Share to Facebook" aria-label="Share to Facebook" 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href="/bios/caroline-uhler">Caroline Uhler</a></div> </div> </div> </div> </div> <div class="field__item"> <div class="paragraph paragraph--type--sidebar-menu sidebar-menu"> <div class="sidebar-menu__col"> <div class="clearfix text-formatted field field--name-field-heading field--type-text field--label-hidden field__item"><p>Related programs</p> </div> <div class="field field--name-field-links field--type-link field--label-hidden field__items"> <div class="field__item"><a href="https://www.ericandwendyschmidtcenter.org/">Eric and Wendy Schmidt Center</a></div> </div> </div> </div> </div> <div class="field__item"> <div class="paragraph paragraph--type--sidebar-articles sidebar-articles"> <div class="sidebar-articles__col"> <div class="clearfix text-formatted field field--name-field-heading field--type-text field--label-hidden field__item"><p>Related news</p> </div> <div class="field field--name-field-content-reference field--type-entity-reference field--label-hidden field__items"> <div 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(max-width: 1600px)" type="image/png" width="87" height="104"> <source srcset="/files/styles/multiple_ct_sidebar_link_with_image_desktop/public/news/images/2022/d13c0plaque_edited.png?h=d3e04ee7&amp;itok=fDjCeHMH 1x" media="all and (min-width: 800px) and (max-width: 1339px)" type="image/png" width="87" height="104"> <source srcset="/files/styles/multiple_ct_sidebar_link_with_image_tablet/public/news/images/2022/d13c0plaque_edited.png?h=d3e04ee7&amp;itok=tY_hW8aW 1x" media="all and (min-width: 540px) and (max-width: 799px)" type="image/png" width="285" height="186"> <source srcset="/files/styles/multiple_ct_sidebar_link_with_image_phone/public/news/images/2022/d13c0plaque_edited.png?h=d3e04ee7&amp;itok=umbaEnXX 1x" media="all and (max-width: 539px)" type="image/png" width="220" height="186"> <img loading="eager" width="220" height="186" src="/files/styles/multiple_ct_sidebar_link_with_image_phone/public/news/images/2022/d13c0plaque_edited.png?h=d3e04ee7&amp;itok=umbaEnXX" alt="Chromatin (red) near amyloid plaque (green) in brain tissue from a mouse model of Alzheimer’s disease." title="Chromatin (red) near amyloid plaque (green) in brain tissue from a mouse model of Alzheimer’s disease." typeof="foaf:Image"> </picture></a> </div> </article> </div> <div class="node__content"> <a href="/news/new-method-identifies-spatial-biomarkers-alzheimer%E2%80%99s-disease-progression-animal-model" class="node__title"><span class="field field--name-title field--type-string field--label-hidden">New method identifies spatial biomarkers of Alzheimer’s disease progression in animal model</span> </a> </div> </article> </div> <div class="field__item"><article about="/news/schmidt-center-scientists-develop-robust-machine-learning-approach-virtual-drug-screening-and" class="node"> <div class="field field--name-field-image field--type-entity-reference field--label-hidden field__item"><article class="media media--type-image media--view-mode-multiple-ct-sidebar-link-with-image"> <div class="field field--name-field-media-image field--type-image field--label-hidden field__item"> <a href="/news/schmidt-center-scientists-develop-robust-machine-learning-approach-virtual-drug-screening-and"><picture> <source srcset="/files/styles/multiple_ct_sidebar_link_with_image_desktop_xl/public/news/images/2022/InfiniteWidth_main.jpg?h=9423a5c0&amp;itok=pN_Th3bZ 1x" media="all and (min-width: 1921px)" type="image/jpeg" width="104" height="104"> <source srcset="/files/styles/multiple_ct_sidebar_link_with_image_desktop_xl/public/news/images/2022/InfiniteWidth_main.jpg?h=9423a5c0&amp;itok=pN_Th3bZ 1x" media="all and (min-width: 1601px) and (max-width: 1920px)" type="image/jpeg" width="104" height="104"> <source srcset="/files/styles/multiple_ct_sidebar_link_with_image_desktop/public/news/images/2022/InfiniteWidth_main.jpg?h=9423a5c0&amp;itok=kBya0HqH 1x" media="all and (min-width: 1340px) and (max-width: 1600px)" type="image/jpeg" width="87" height="104"> <source srcset="/files/styles/multiple_ct_sidebar_link_with_image_desktop/public/news/images/2022/InfiniteWidth_main.jpg?h=9423a5c0&amp;itok=kBya0HqH 1x" media="all and (min-width: 800px) and (max-width: 1339px)" type="image/jpeg" width="87" height="104"> <source srcset="/files/styles/multiple_ct_sidebar_link_with_image_tablet/public/news/images/2022/InfiniteWidth_main.jpg?h=9423a5c0&amp;itok=RQpbxxPF 1x" media="all and (min-width: 540px) and (max-width: 799px)" type="image/jpeg" width="285" height="186"> <source srcset="/files/styles/multiple_ct_sidebar_link_with_image_phone/public/news/images/2022/InfiniteWidth_main.jpg?h=9423a5c0&amp;itok=sUasmJ8W 1x" media="all and (max-width: 539px)" type="image/jpeg" width="220" height="186"> <img loading="eager" width="220" height="186" src="/files/styles/multiple_ct_sidebar_link_with_image_phone/public/news/images/2022/InfiniteWidth_main.jpg?h=9423a5c0&amp;itok=sUasmJ8W" alt="Caroline Uhler, Adit Radhakrishnan" title="Caroline Uhler, Adit Radhakrishnan" typeof="foaf:Image"> </picture></a> </div> </article> </div> <div class="node__content"> <a href="/news/schmidt-center-scientists-develop-robust-machine-learning-approach-virtual-drug-screening-and" class="node__title"><span class="field field--name-title field--type-string field--label-hidden">Schmidt Center scientists develop a robust machine learning approach for virtual drug screening and other applications</span> </a> </div> </article> </div> </div> </div> </div> </div> </div> <div class="clearfix text-formatted field field--name-field-text field--type-text-long field--label-hidden field__item"><p>Ductal carcinoma in situ (DCIS), a pre-invasive tumor, accounts for about 25 percent of breast cancer diagnoses, a leading cause of cancer death. While doctors generally recommend treatment, they lack the appropriate evidence to reliably decide which tumor will remain benign and which might turn into a life-threatening invasive ductal carcinoma (IDC), resulting in high rates of overtreatment.</p> <p>The current methods for understanding DCIS progression include manual assessment of nuclear morphology by pathologists, sequencing-based approaches, spatial transcriptomics, and highly multiplexed imaging. However, these methods face challenges due to cost, complexity, and limited information about the tissue microenvironment, which is necessary for accurate DCIS progression assessment.</p> <p>In a new study published today in <a href="https://www.nature.com/articles/s41467-024-50285-1" target="_blank"><em>Nature Communications</em></a>, researchers at the ӳý of MIT and Harvard and the Paul Scherrer Institute at ETH Zürich in Switzerland have found a simple and effective method of predicting the disease stage of DCIS, which could ultimately lead to more informed recommendations for DCIS breast cancer treatment. Their analysis demonstrates that, without the need of multiple stains or sequencing-based technologies, chromatin imaging provides sufficient information about cell states and tissue organization to accurately predict tumor stages.</p> <p>The study stems from a long-term collaboration combining AI and biology between <a href="/node/777156">Caroline Uhler</a>, who directs the <a href="https://ericandwendyschmidtcenter.org/" target="_blank">Eric and Wendy Schmidt Center</a> at the ӳý, and is a professor in the Department of Electrical Engineering and Computer Science as well as the Institute for Data, Systems, and Society at MIT; and GV Shivashankar, professor of mechanogenomics and head of the Laboratory of Nanoscale Biology at the Paul Scherrer Institute.</p> <p>Shivashankar’s lab is interested in understanding the underlying mechanisms for cell-state transitions and the association with disease states. They aim to improve early disease diagnostics by using multi-disciplinary approaches, such as single-cell imaging, functional genomics, and machine learning, to study the coupling between cell mechanics and genome organization in tissue contexts.</p> <p>“Building on our previous studies with the Schmidt Center, we’re thrilled that we found a simple way to predict disease stage through the statistics of cell states, and we look forward to seeing how this can be applied to DCIS treatment,” said co-senior author Shivashankar.</p> <p>The study aligns with the Schmidt Center’s goal of fostering a two-way street between biology and machine learning to advance biomedical discoveries and provide insights into how cells work in health and disease.</p> <p>“As our research on DCIS shows, it’s important to create novel machine learning methods to analyze biomedical data,” said co-senior author Uhler. “Using machine learning to analyze data can lead to more accurate and simpler solutions for important biological questions, ultimately leading to better disease diagnosis and treatment.”</p> <p>“Collaborating with Shivashankar’s lab, which I have done on several projects, provides me with a unique opportunity to develop computational methods for important biological problems,” said study first author Xinyi Zhang, a graduate student at MIT and the Schmidt Center. “I’m able to see what the real roadblocks and challenges are in the biomedical space and start thinking about what to develop next.”</p> <p>Using unsupervised representation learning methods, the scientists analyzed 560 samples from 122 patients at 11 stages of DCIS progression from normal to cancerous breast tissues. They identified eight disease-relevant cell states based on nuclear morphology and chromatin organization, and found that all eight cell states exist in all disease stages, but with different abundances.&nbsp;</p> <p>Based on the learned representations, the researchers then arranged the cell types from healthy to cancerous, finding that the order matched the natural progression of the disease, even though the model wasn't trained directly on disease stages. The study also demonstrated that spatial organization of cells near breast ducts and the co-localization of cell states can better predict disease stage compared to cell state abundance alone. This approach highlighted distinct cell states, their relative abundances, and their spatial neighborhoods, indicating their potential as biomarkers for cancer staging.</p> <p>Although follow-up clinical trials with longitudinal tracking of DCIS patients are needed, this study demonstrated that high-dimensional AI-inferred features based on simple and cheap chromatin images can provide valuable insights into tumor progression. Uhler noted that this study introduces a new approach to exploring disease progression within a tumor microenvironment, specifically by leveraging machine learning and computational methods to extract meaningful information from complex chromatin images, without the need for extensive staining or sequencing.&nbsp;</p> <p>By focusing on one of the Schmidt Center’s core missions – developing the foundations of machine learning to understand the programs of life – this study offers simple and cost-effective solutions for disease prognosis and treatment.</p> <p><em>Adapted from <a href="https://www.ericandwendyschmidtcenter.org/updates/researchers-identify-cheap-and-effective-biomarkers-for-dcis-tumor-stage" target="_blank">a story published by the Eric and Wendy Schmidt Center</a></em>.</p> </div> </div> </div> <div class="field__item"> <div class="paragraph paragraph--type--table-outro paragraph--view-mode--default"> <div class="field field--name-field-paragraph field--type-entity-reference-revisions field--label-hidden field__items"> <div class="field__item"> <div class="paragraph paragraph--type--table-outro-row paragraph--view-mode--default"> <div class="clearfix text-formatted field field--name-field-heading field--type-text field--label-hidden field__item"><p>Funding</p> </div> <div class="clearfix text-formatted field field--name-field-text field--type-text-long field--label-hidden field__item"><p>Support for this study was provided by the Eric and Wendy Schmidt Center, the National Center for Complementary and Integrative Health, the Office of Naval Research, the Swiss National Foundation, and other sources.</p> </div> </div> </div> <div class="field__item"> <div class="paragraph paragraph--type--table-outro-row paragraph--view-mode--default"> <div class="clearfix text-formatted field field--name-field-heading field--type-text field--label-hidden field__item"><p>Paper cited</p> </div> <div class="clearfix text-formatted field field--name-field-text field--type-text-long field--label-hidden field__item"><p>Zhang X et al.&nbsp;<a href="https://www.nature.com/articles/s41467-024-50285-1" target="_blank">Unsupervised representation learning of chromatin images identifies changes in cell state and tissue organization in DCIS</a>. <em>Nature Communications</em>. Online July 20, 2024. DOI:&nbsp;10.1038/s41467-024-50285-1.</p> </div> </div> </div> </div> </div> </div> </div> </div> </div> </div> <div class="content-section container"> <div class="content-section__main"> <div class="block-node-broad-tags block block-layout-builder block-field-blocknodelong-storyfield-broad-tags"> <div class="block-node-broad-tags__row"> <div class="block-node-broad-tags__title">Tags:</div> <div class="field field--name-field-broad-tags field--type-entity-reference field--label-hidden field__items"> <div class="field__item"><a href="/broad-tags/eric-and-wendy-schmidt-center" hreflang="en">Eric and Wendy Schmidt Center</a></div> <div class="field__item"><a href="/broad-tags/machine-learning" hreflang="en">Machine learning</a></div> <div class="field__item"><a href="/broad-tags/cancer" hreflang="en">Cancer</a></div> <div class="field__item"><a href="/broad-tags/data-science-0" hreflang="en">Data science</a></div> <div class="field__item"><a href="/broad-tags/machine-learning-0" hreflang="en">Machine Learning</a></div> <div class="field__item"><a href="/broad-tags/caroline-uhler" hreflang="en">Caroline Uhler</a></div> </div> </div> </div> </div> </div> Wed, 21 Feb 2024 15:00:00 +0000 chenders@broadinstitute.org 5556501 at