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Alphonse, S.

Publications and source records attributed to Alphonse, S..

2 recordsLinked to original sources

Extended DNA binding interface beyond the canonical SAP domain contributes to SDE2 function at DNA replication forks

Elevated DNA replication stress causes instability of the DNA replication fork and DNA mutations, which underlies tumorigenesis. The DNA replication stress regulator SDE2 binds to TIMELESS (TIM) of the fork protection complex (FPC) and enhances its stability, thereby supporting replisome activity at DNA replication forks. Here, we structurally and functionally characterize a new conserved DNA binding motif related to SAP (SAF-A/B, Acinus, PIAS) in human SDE2 and establish its preference for single-stranded DNA (ssDNA). The nuclear magnetic resonance solution structure of SDE2SAP reveals a helix-extended loop-helix core aligned parallel to each other, consistent with known canonical SAP folds. Notably, its DNA interaction extends beyond the core SAP domain and is augmented by two lysine residues in the C-terminal tail, which is uniquely positioned adjacent to SAP and conserved in the pre-mRNA splicing factor SF3A3. Mutation in the SAP domain with extended C-terminus not only disrupts ssDNA binding but also impairs TIM localization at replication forks, thus inhibiting efficient fork progression. Together, our study establishes SDE2SAP as an essential element for SDE2 to exert its role in preserving replication fork integrity via FPC regulation and highlights the structural diversity of the DNA-protein interactions achieved by a specialized DNA binding motif.

biochemistry↗

Multidisciplinary Interrogation of a Crucial Protein Interface in the Type II Secretion System

The type IV filament superfamily comprises widespread membrane-associated polymers in prokaryotes. The Type II secretion system (T2SS), a significant virulence pathway in many pathogens, belongs to this superfamily. A knowledge gap in the understanding of the T2SS is the molecular role of a small pseudopilin protein. Using multiple biophysical techniques, we have deciphered how this missing component of the Xcp T2SS architecture is structurally integrated, and thereby also unlocked its function. We demonstrate that the low abundance XcpH is the adapter that bridges a trimeric initiating tip complex XcpIJK with a periplasmic filament of XcpG subunits. Our model reveals that each pseudopilin protein caps an XcpG protofilament in an overall pseudopilus compatible with the dimensions of the periplasm and the outer membrane-spanning secretin through which substrates of the T2SS pass. Unexpectedly, to fulfill its adapter function, the XcpH N-terminal helix must be unwound, a property shared with the XcpG subunits. We provide the first complete structural model of a type IV filament, a result immediately transferable to understanding of other T2SS and the type IV pili.

microbiology↗