{"id":13,"date":"2019-01-20T14:15:18","date_gmt":"2019-01-20T19:15:18","guid":{"rendered":"https:\/\/sites.bu.edu\/joneslab\/?page_id=13"},"modified":"2026-08-04T09:56:42","modified_gmt":"2026-08-04T13:56:42","slug":"research","status":"publish","type":"page","link":"https:\/\/sites.bu.edu\/joneslab\/research\/","title":{"rendered":""},"content":{"rendered":"<p><!-- PROJECT 1: MECHANICAL BARRIERS & CAF-EXOSOMES --><\/p>\n<h2 style=\"color: #222222; font-size: 32px; font-weight: 700; margin-top: 40px; margin-bottom: 30px;\">Research<\/h2>\n<div style=\"background-color: #f5f5f5; border: 2px solid #cccccc; padding: 40px; margin: 30px 0; border-radius: 4px;\">\n<h3 style=\"color: #333333; font-size: 24px; font-weight: 600; margin-top: 0; margin-bottom: 25px;\">Project 1: Extracellular Matrix-Driven Immunosuppression in Breast Cancer<\/h3>\n<div style=\"color: #555555; line-height: 1.85; font-size: 15px;\">\n<p style=\"margin-top: 0; margin-bottom: 0;\">Immunotherapy response rates in breast cancer remain suboptimal, yet patients with robust T cell infiltration into tumors respond significantly better. Our laboratory investigates how two interconnected barriers limit T cell access to metastatic breast tumors: physical compression of the vasculature by the extracellular matrix, and immunosuppressive signals from cancer-associated fibroblasts (CAFs). We employ  strategies to decompress tumor vessels and enhance blood vessel function, thereby promoting T cell infiltration. Simultaneously, we target CAF-produced collagen and other immunosuppressive factors to overcome additional layers of T cell suppression. Our research combines in vivo imaging, adoptive transfer studies, and single-cell transcriptomics to uncover how mechanical decompression combined with strategies targeting CAF-driven immunosuppression can unlock T cell function and improve immunotherapy efficacy in breast cancer.<\/p>\n<\/p><\/div>\n<p>  <!-- ASSOCIATED MANUSCRIPTS HEADING --><\/p>\n<h4 style=\"color: #333333; font-size: 16px; font-weight: 600; margin-top: 25px; margin-bottom: 15px;\">Representative Publications<\/h4>\n<p>  <!-- MANUSCRIPTS FLEXBOX - SIDE BY SIDE --><\/p>\n<div style=\"display: flex; justify-content: center; gap: 20px; flex-wrap: nowrap;\">\n<p>    <!-- MANUSCRIPT 1 --><\/p>\n<div style=\"background-color: #ffffff; border: 1px solid #dddddd; border-radius: 4px; overflow: hidden; box-shadow: 0 2px 6px rgba(0,0,0,0.08); flex: 0 0 auto; width: 160px;\">\n      <a href=\"https:\/\/www.nature.com\/articles\/s41551-021-00766-1\" style=\"text-decoration: none; color: inherit; display: block;\"><br \/>\n        <img src=\"\/joneslab\/files\/2026\/08\/11-Jones_et_al_Nature_BME_2021415338.jpg\" alt=\"Manuscript 1: Solid stress impairs lymphocyte infiltration\" style=\"width: 100%; height: auto; display: block; aspect-ratio: 8.5\/11;\"><\/p>\n<div style=\"padding: 10px;\">\n<p style=\"color: #666666; font-size: 11px; margin: 0; line-height: 1.3; font-weight: 500; text-align: center;\">Solid stress impairs lymphocyte infiltration into lymph-node metastases<\/p>\n<\/p><\/div>\n<p>      <\/a>\n    <\/div>\n<p>    <!-- MANUSCRIPT 2 --><\/p>\n<div style=\"background-color: #ffffff; border: 1px solid #dddddd; border-radius: 4px; overflow: hidden; box-shadow: 0 2px 6px rgba(0,0,0,0.08); flex: 0 0 auto; width: 160px;\">\n      <a href=\"https:\/\/pmc.ncbi.nlm.nih.gov\/articles\/PMC13012019\/pdf\/crc-25-0259.pdf\" style=\"text-decoration: none; color: inherit; display: block;\"><br \/>\n        <img src=\"\/joneslab\/files\/2026\/08\/crc-25-02591-copy.jpg\" alt=\"Manuscript 2: Collagen-Bearing Exosomes from CAFs\" style=\"width: 100%; height: auto; display: block; aspect-ratio: 8.5\/11;\"><\/p>\n<div style=\"padding: 10px;\">\n<p style=\"color: #666666; font-size: 11px; margin: 0; line-height: 1.3; font-weight: 500; text-align: center;\">Collagen-Bearing Exosomes from Breast Cancer\u2013Associated Fibroblasts Promote T-cell Dysfunction<\/p>\n<\/p><\/div>\n<p>      <\/a>\n    <\/div>\n<\/p><\/div>\n<\/div>\n<p><!-- DIVIDER BETWEEN PROJECTS --><\/p>\n<hr style=\"border: none; border-top: 2px solid #cccccc; margin: 50px 0; opacity: 0.6;\">\n<p><!-- PROJECT 2: LYMPHATIC VESSEL DYSFUNCTION & S. AUREUS INFECTION --><\/p>\n<div style=\"background-color: #f5f5f5; border: 2px solid #cccccc; padding: 40px; margin: 30px 0; border-radius: 4px;\">\n<h3 style=\"color: #333333; font-size: 24px; font-weight: 600; margin-top: 0; margin-bottom: 25px;\">Project 2: Infection-Associated Lymphatic Vessel Dysfunction and Regenerative Cell Therapy<\/h3>\n<div style=\"color: #555555; line-height: 1.85; font-size: 15px;\">\n<p style=\"margin-top: 0; margin-bottom: 0;\">Recurrent skin infections caused by <em>Staphylococcus aureus<\/em> drive a devastating cycle of worsening lymphedema through sustained impairment of lymphatic vessel function. Our laboratory investigates how bacterial infection damages lymphatic muscle cells (LMCs)\u2014the contractile cells essential for lymph propulsion and immune surveillance\u2014and how this damage perpetuates chronic lymphatic dysfunction. We characterize the molecular pathways and bacterial factors that impair LMC function, identify novel therapeutic targets through single-cell transcriptomics and functional imaging, and test strategies to restore lymphatic vessel contractility. By elucidating how <em>S. aureus<\/em> toxins disrupt lymphatic immunity and lymph flow, we aim to develop interventions that preserve lymphatic function, prevent lymphedema progression, and enhance host defense against recurrent infections.<\/p>\n<\/p><\/div>\n<p>  <!-- ASSOCIATED MANUSCRIPTS HEADING --><\/p>\n<h4 style=\"color: #333333; font-size: 16px; font-weight: 600; margin-top: 25px; margin-bottom: 15px;\">Representative Publications<\/h4>\n<p>  <!-- MANUSCRIPTS FLEXBOX - SIDE BY SIDE --><\/p>\n<div style=\"display: flex; justify-content: center; gap: 20px; flex-wrap: nowrap;\">\n<p>    <!-- MANUSCRIPT 1 --><\/p>\n<div style=\"background-color: #ffffff; border: 1px solid #dddddd; border-radius: 4px; overflow: hidden; box-shadow: 0 2px 6px rgba(0,0,0,0.08); flex: 0 0 auto; width: 160px;\">\n      <a href=\"https:\/\/www.ahajournals.org\/doi\/10.1161\/ATVBAHA.125.322567?url_ver=Z39.88-2003&#038;rfr_id=ori:rid:crossref.org&#038;rfr_dat=cr_pub%20%200pubmed\" target=\"_blank\" rel=\"noopener noreferrer\" style=\"text-decoration: none; color: inherit; display: block;\"><br \/>\n        <img src=\"\/joneslab\/files\/2026\/08\/arroyo-ataz-et-al-2025-single-cell-transcriptomics-and-lineage-tracing-unveil-parallels-in-lymphatic-muscle-and-venous-1.jpg\" alt=\"Single-Cell Transcriptomics and Lineage Tracing Unveil Parallels in Lymphatic Muscle and Venous Smooth Muscle Development, Identity, and Function\" style=\"width: 100%; height: auto; display: block; aspect-ratio: 8.5\/11; background-color: #e8e8e8;\"><\/p>\n<div style=\"padding: 10px;\">\n<p style=\"color: #666666; font-size: 11px; margin: 0; line-height: 1.3; font-weight: 500; text-align: center;\">Single-Cell Transcriptomics and Lineage Tracing Unveil Parallels in Lymphatic Muscle and Venous Smooth Muscle Development, Identity, and Function<\/p>\n<\/p><\/div>\n<p>      <\/a>\n    <\/div>\n<p>    <!-- MANUSCRIPT 2 --><\/p>\n<div style=\"background-color: #ffffff; border: 1px solid #dddddd; border-radius: 4px; overflow: hidden; box-shadow: 0 2px 6px rgba(0,0,0,0.08); flex: 0 0 auto; width: 160px;\">\n      <a href=\"https:\/\/onlinelibrary.wiley.com\/doi\/10.1111\/micc.12887\" target=\"_blank\" rel=\"noopener noreferrer\" style=\"text-decoration: none; color: inherit; display: block;\"><br \/>\n        <img src=\"\/joneslab\/files\/2026\/08\/1Microcirculation-2024-Arroyo\u2010Ataz-Overview-of-Lymphatic-Muscle-Cells-in-Development-Physiology-and-Disease.jpg\" alt=\"Overview of Lymphatic Muscle Cells in Development, Physiology, and Disease\" style=\"width: 100%; height: auto; display: block; aspect-ratio: 8.5\/11; background-color: #e8e8e8;\"><\/p>\n<div style=\"padding: 10px;\">\n<p style=\"color: #666666; font-size: 11px; margin: 0; line-height: 1.3; font-weight: 500; text-align: center;\">Overview of Lymphatic Muscle Cells in Development, Physiology, and Disease<\/p>\n<\/p><\/div>\n<p>      <\/a>\n    <\/div>\n<\/p><\/div>\n<\/div>\n","protected":false},"excerpt":{"rendered":"<p>Research Project 1: Extracellular Matrix-Driven Immunosuppression in Breast Cancer Immunotherapy response rates in breast cancer remain suboptimal, yet patients with robust T cell infiltration into tumors respond significantly better. Our laboratory investigates how two interconnected barriers limit T cell access to metastatic breast tumors: physical compression of the vasculature by the extracellular matrix, and immunosuppressive [&hellip;]<\/p>\n","protected":false},"author":15827,"featured_media":0,"parent":0,"menu_order":2,"comment_status":"closed","ping_status":"closed","template":"page-templates\/no-sidebars.php","meta":[],"_links":{"self":[{"href":"https:\/\/sites.bu.edu\/joneslab\/wp-json\/wp\/v2\/pages\/13"}],"collection":[{"href":"https:\/\/sites.bu.edu\/joneslab\/wp-json\/wp\/v2\/pages"}],"about":[{"href":"https:\/\/sites.bu.edu\/joneslab\/wp-json\/wp\/v2\/types\/page"}],"author":[{"embeddable":true,"href":"https:\/\/sites.bu.edu\/joneslab\/wp-json\/wp\/v2\/users\/15827"}],"replies":[{"embeddable":true,"href":"https:\/\/sites.bu.edu\/joneslab\/wp-json\/wp\/v2\/comments?post=13"}],"version-history":[{"count":26,"href":"https:\/\/sites.bu.edu\/joneslab\/wp-json\/wp\/v2\/pages\/13\/revisions"}],"predecessor-version":[{"id":494,"href":"https:\/\/sites.bu.edu\/joneslab\/wp-json\/wp\/v2\/pages\/13\/revisions\/494"}],"wp:attachment":[{"href":"https:\/\/sites.bu.edu\/joneslab\/wp-json\/wp\/v2\/media?parent=13"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}