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Pride, J.

Publications and source records attributed to Pride, J..

2 recordsLinked to original sources

An in vivo examination of Dynein-Cargo complex formation.

Long-range intracellular transport relies on microtubule motors. This process is particularly important in large cells such as neurons and oocytes. While transport towards the plus-end of microtubules utilizes many kinesins, minus-end transport is largely mediated by a single motor, cytoplasmic dynein. Activation of dynein requires the large dynactin complex as well as a cargo adaptor. How dynein, dynactin, and adaptors assemble in vivo, particularly within specialized tissues such as the Drosophila egg chamber remains unclear. In the current study, we defined the dynein interactome in Drosophila egg chambers using in vivo proximity biotin ligation. Our findings suggest that Bicaudal-D (BicD) is the principal adaptor responsible for activating dynein and linking it with cargo in this tissue. We also identified Centrocortin (Cen) as a dynein adaptor in egg chambers. However, unlike BicD, loss of Cen did not affect dynein localization or apparent activation. To more specifically analyze adaptor-dependent assembly and cargo transport, we examined dynein light intermediate chain (Dlic) mutants known to impair adaptor binding. As expected, these mutants disrupted the BicD-dynein interaction. However, Cen remained associated with the dynein/dynactin complex in the mutant background, suggesting that Cen engages the motor by a different mechanism. Finally, live imaging of microtubules revealed that even when adaptor binding is compromised, dynein-driven microtubule gliding can still deliver nurse cell-derived cargo into the oocyte, albeit with reduced efficiency. Collectively, our results reveal multiple, mechanistically distinct routes for adaptor association with dynein in vivo and indicate that redundant processes can sustain cargo transport during oogenesis.

cell biology↗

Proteomic profiling of cytoskeletal interactomes using MT-ID and Act-ID.

The microtubule and actin cytoskeletons form dynamic, interconnected networks that are critical for eukaryotic cell function. These networks govern intracellular organization, cargo transport, cell migration, and tissue morphogenesis. Microtubules and actin filaments are regulated by diverse binding proteins that control many aspects of their function. However, identifying cytoskeletal-interacting proteins has been challenging due to the transient and weak nature of many interactions and the disruption of native architecture by conventional biochemical approaches. These limitations suggest that numerous physiologically relevant cytoskeletal regulators remain undiscovered. Identifying these factors requires novel and sensitive methodologies that can capture cytoskeletal interactions under native cellular conditions. Here, we present MT-ID and Act-ID, powerful proximity-labeling tools for identifying microtubule and actin-interacting proteins, respectively. MT-ID employs the microtubule-binding domain of MAP7 (EMTB) fused to TurboID, a highly active promiscuous biotin ligase. Act-ID utilizes the actin-binding domain of ITPKA (F-tractin) similarly fused to TurboID. We validate both approaches by successfully identifying numerous known cytoskeletal regulators and discovering potentially novel interacting proteins. Functional characterization reveals that LIMCH1 is a previously unrecognized microtubule-associated protein whose depletion increases microtubule density. Additionally, we identify FBXO30 as a novel actin-interacting protein, with its loss promoting increased focal adhesion formation. MT-ID and Act-ID will be useful not only to identify cytoskeletal interacting proteins but also to define changes to the cytoskeletal interactome when cells are exposed to changing physiological conditions.

cell biology↗