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  <title><![CDATA[PhD Proposal by Makala Faniel]]></title>
  <body><![CDATA[<p>&nbsp;</p><p><strong>Makala Faniel</strong></p><p><strong>BioE PhD Proposal Presentation</strong></p><p>Wednesday, September 9th, 2026, at 10:30 am</p><p>Location: Kendeda 118 Seminar Room</p><p>Teams Link:&nbsp;<a href="https://teams.microsoft.com/meet/241560061777867?p=SdsN4kN3cJ3NXhCVck" target="_blank" title="https://teams.microsoft.com/meet/241560061777867?p=SdsN4kN3cJ3NXhCVck">https://teams.microsoft.com/meet/241560061777867?p=SdsN4kN3cJ3NXhCVck</a></p><p><strong>&nbsp;</strong></p><p><strong>Advisor:</strong></p><p>Dr. Cheng Zhu, Wallace H. Coulter Department of Biomedical Engineering</p><p><strong>&nbsp;</strong></p><p><strong>Committee Members:</strong></p><p>Dr. Edward Botchwey, Wallace H. Coulter Department of Biomedical Engineering</p><p>Dr. Gabriel Kwong, Wallace H. Coulter Department of Biomedical Engineering</p><p>Dr. Alexander Vlahos, Wallace H. Coulter Department of Biomedical Engineering</p><p>Dr. Milos Aleksic, Immunocore</p><p>&nbsp;</p><p><strong>Defining How Force Regulates T Cell Activation in Cancer</strong></p><p>T cells play a central role in the immune system's ability to recognize and eliminate cancer cells. However, tumors can evade immune destruction through mechanisms that suppress T-cell activation and function within the tumor microenvironment. Recent studies have shown that mechanical forces transmitted through receptor-ligand interactions are critical regulators of T-cell activation, yet the role of these force-dependent mechanisms in cancer remains incompletely understood. This proposal seeks to define how mechanical forces regulate T-cell behavior in cancer across three contexts: engineered activation through bispecific T-cell engagers (BiTEs), suppression and restoration of force-dependent signaling within the tumor microenvironment, and co-agonist-mediated antigen recognition. Using single-molecule and cellular mechanobiology techniques including micropipette adhesion frequency assays, biomembrane force probe measurements, and super-resolution imaging approaches, this work will characterize how force-dependent receptor interactions influence T-cell activation and function. These studies will provide new mechanistic insight into T-cell mechanotransduction and may inform the development of improved cancer immunotherapies.</p><p>&nbsp;</p>]]></body>
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