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Butler-Hallissey, C.

Publications and source records attributed to Butler-Hallissey, C..

2 recordsLinked to original sources

Direct labeling of microtubule turnover reveals in-lattice repair and stabilization patterns in developing neurons

The microtubule cytoskeleton is the backbone of neuronal morphogenesis, driving the development of the dendrites and axon, and supporting trafficking to distant compartments. How neuronal microtubules are maintained and renewed in the face of this dynamic endeavor and long-term commitment remains unclear. Recently, in-lattice repair has emerged as an alternative mechanism of microtubule renewal that could allow for continuity of the existing network and for the emergence of cell polarity. Here, we directly assessed microtubule turnover using microinjection of labeled tubulin in cultured hippocampal neurons that exhibit well defined stages of development and polarization during the first 24 hours in culture. Sizeable tubulin integration was visible minutes after microinjection, indicating fast turnover of microtubules in developing neurons. Once it appeared, a longer neurite that would become the nascent axon showed decreased turnover, both for its acetylated and non-acetylated populations of microtubules. Combining microinjection with expansion microscopy allowed us to visualize tubulin integration sites along single microtubules, unambiguously demonstrating the existence of in-lattice integration along neurites. In thick neurites, we observed preferential integration within non-acetylated cortical microtubules, but in-lattice integration sites were also visible in the deeper core bundles of acetylated microtubules. Overall, our results link previous observations of microtubule stabilization patterns in developing neurons to their actual turnover. Mapping these patterns of turnover strengthens the notion that microtubules establish an organized network that participates in axon emergence and the establishment of neuronal polarity.

cell biology↗

Keratins couple with the nuclear lamina and regulate proliferation in colonic epithelial cells

Keratin intermediate filaments (IFs) convey mechanical stability and protection against stress to epithelial cells, and may participate in nuclear structure and organization. Keratins are important for colon health as observed in keratin 8 knockout (K8-/-) mice, which exhibit colonic inflammation and epithelial hyperproliferation. Here, using a full body and two intestinal epithelial-specific K8-/- knockout mouse models, we determine if cytoplasmic keratins affect the nuclear structure and lamina in epithelial colonocytes. K8-/- colonocytes in vivo and in organoid cultures exhibit significantly decreased levels of the major lamins A/C, B1 and B2 in a colon-specific and cell-intrinsic manner independent of major changes in colonic inflammation or microbiota. Downregulation of K8 by siRNA in Caco-2 cells similarly decreases lamin A levels, which recover after re-expression of K8. K8 loss is associated with reduced plectin, LINC complex proteins and lamin-associated proteins, indicating a dysfunctional keratin-nuclear lamina coupling. Immunoprecipitation identifies complexes of colonocyte keratins with the LINC protein SUN2 and lamin A. Hyperphosphorylation of the lamin A-associated cell cycle regulator pRb in K8-/- colonocytes together with increased nuclear localization of the mechanosensor YAP provide a molecular mechanism for the hyperproliferation phenotype. These findings identify a novel, colonocyte-specific role for K8 in nuclear function.

cell biology↗