Mechanisms of cargo transport by microtubule motors
In plain English
AI plain-English summaryEvery second, a herpes virus hijacks a motor protein inside a nerve cell to drag its genetic cargo toward the nucleus. Inside neurons, two families of motor proteins—dynein, which hauls cargo inward, and kinesin, which moves it outward—must coordinate precisely to deliver organelles, RNAs, and proteins to the right places. How they do this, and how pathogens like herpes viruses exploit the system, remains poorly understood. This project will map the network of adaptor proteins that link motors to their cargo and determine how those connections control motor activity. The team will develop crosslinking mass spectrometry to identify motor–cargo interactions in neurons, then combine live-cell imaging, cryo-electron microscopy, and biochemical reconstitution to study the mechanisms in detail. This is fundamental science: it will uncover the molecular principles of intracellular cargo delivery. A deeper understanding of motor coordination could eventually inform strategies to block viral spread in herpes infections, or to correct transport failures in neurodegenerative diseases where cargo delivery goes awry.
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