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Chiozzi, R. Z.

Publications and source records attributed to Chiozzi, R. Z..

2 recordsLinked to original sources

Clathrin differentially adapts its trimerisation domain during mammalian evolution to traffic the insulin-responsive GLUT4 glucose transporter.

In humans, the CHC22 isoform of clathrin regulates glucose metabolism by trafficking the GLUT4 glucose transporter for intracellular storage in skeletal muscle and release following insulin signalling. Some vertebrate lineages have lost the gene encoding CHC22 but operate the same insulin-stimulated GLUT4 trafficking pathway. Here, we show that species lacking CHC22 exclusively produce an alternatively-spliced form of the universally expressed CHC17 clathrin isoform (CHC17-SAS) with a truncated C-terminus similar to CHC22, expressed predominantly in skeletal muscle. Through its trimerisation domain, CHC17-SAS binds the CHC22-specific adaptor SNX5 that enables CHC22's distinct intracellular function. The 2.3 [A] crystal structure of the CHC22 trimerisation domain demonstrates conservation of the core trimeric fold from CHC17 but differences in electrostatic surface charge that may account for their differential properties. Using GLUT4 translocation assays in HeLa cell models, we show that CHC17-SAS is a functional surrogate for CHC22. Identification of CHC17-SAS resolves the evolutionary conundrum posed by CHC22 absence in some vertebrate lineages, and reveals a common mechanism for mammalian GLUT4 trafficking.

cell biology↗

Unraveling the intricate microtubule inner protein networks that reinforce mammalian sperm flagella

To find and fuse with the egg, mammalian sperm must complete an arduous voyage through the female reproductive tract. The sperm cells remarkable odyssey is powered by its flagellum, a microtubule-based molecular machine ornamented with accessory structures that stabilize the sperm tail in viscous media. Recently, cryo-electron tomography (cryo-ET) revealed that mammalian sperm flagella are further reinforced at the molecular scale with sperm-specific microtubule inner proteins (sperm-MIPs), but the identities of these sperm-MIPs are unknown. Here, we use cryo-electron microscopy to resolve structures of native bovine sperm doublet microtubules, thus identifying most sperm-MIPs. In the A-tubule, several copies of testis-specific Tektin-5 contribute to an extended protein network spanning nearly the entire microtubule lumen. Different copies of Tektin-5 adopt a range of conformations and organizations based on their local interactions with other MIPs. The B-tubule is in turn stabilized by sperm-MIPs that bind longitudinally along and laterally across protofilaments. We further resolve structures of endpiece singlet microtubules, revealing MIPs shared between singlets and doublets. Our structures shed light on the molecular diversity of cilia across different cell types of the vertebrate body and provide a structural framework for understanding the molecular underpinnings of male infertility.

cell biology↗