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Biology subjects

Yang, W.-Q.

Publications and source records attributed to Yang, W.-Q..

2 recordsLinked to original sources

Centriole biogenesis is seeded by CEP152-CEP63-PCNT aggregates propagating outside the centriole through the Alstrom syndrome protein ALMS1

Biogenesis of subcellular structures like centrioles is viewed as a physical transformation wherein elementary constituents form order without preexisting templates. Centrioles grow with precision from a composite scaffold known as the cartwheel, which is thought to self-assemble without templates and disassemble following centriole growth; however, the mechanism governing cartwheel assembly-disassembly dynamics remains obscure. Here, we identify ALMS1, a disease-linked, intrinsically disordered protein (IDP), as an external mediator of cartwheel dynamics that causes a seed for cartwheel--and thus centriole--formation without itself incorporating into the seed structure. The cartwheel seed (CS), characterized as a dense composite of CEP152/CEP63 protein complexes, forms in interphase and adopts a nanoscale, concentric ring from which the cartwheel grows. Upon mitotic entry, CSs recruit ALMS1 while disassembling into constituents associating with ALMS1 in proximity, correlating with cartwheel assembly-disassembly cycles. Hypomorph, disease-linked ALMS1 mutations trigger cartwheel expansion and shedding by its own grown procentriole, in turn forming ectopic centrioles, leading to perpetual reciprocal amplification. Without ALMS1, CS formation fails, negating centriole biogenesis, whereas reintroducing ALMS1 initializes biogenesis anew, creating diverse yet heritable architectures that evolve through selection, instead of generating a single canonical form. These results suggest that centriole biogenesis is grounded on adaptable transformation cues extrinsic to its constituents, propagating via IDP-mediated CS assembly-disassembly cycles, a process we conjecture involves memory.

cell biology↗

THUMPD2 catalyzes N2-methylation on the spliceosome catalytic center of U6 snRNA and regulates pre-mRNA splicing

How the relatively evolutionarily conserved spliceosome is able to manage the enormously expanded number of splicing events that occur in humans ([~]200,000 vs. [~]400 reported for yeast) is not well understood. Here, we show deposition of one RNA modification-N2-methylguanosine (m2G)-on the G72 nucleoside of U6 snRNA (known to function as the catalytic center of the spliceosome) results in profoundly increased pre-mRNA splicing activity in human cells. This U6 m2G72 modification is conserved among vertebrates. Further, we demonstrate that THUMPD2 is the methyltransferase responsible for U6 m2G72 and show that it interacts with an auxiliary protein (TRMT112) to specifically recognize both sequence and structural elements of U6. THUMPD2 KO blocks U6 m2G72 and down-regulates the pre-mRNA splicing activity of major spliceosome, yielding thousands of changed alternative splicing events of endogenous pre-mRNAs. Notably, the aberrantly spliced pre-mRNA population of the THUMPD2 KO cells elicits the nonsense-mediated mRNA decay (NMD) pathway and restricts cell proliferation. Our study thus demonstrates how an RNA epigenetic modification of the major spliceosome differentially regulates global pre-mRNA splicing.

biochemistry↗