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Rout, S. R.

Publications and source records attributed to Rout, S. R..

2 recordsLinked to original sources

The vacuolar tauopathy-associated mutation D395G confers redox sensitivity to p97/VCP

The multifunctional AAA+ ATPase p97/VCP is a pivotal regulator of cellular proteostasis, extracting polyubiquitinated substrates from protein complexes or organelle membranes for proteasomal degradation. Mutations in p97 are linked to a broad spectrum of neurodegenerative disorders, including multisystem proteinopathy and amyotrophic lateral sclerosis. Here, we provide insights into the basis of dysfunction in p97D395G, implicated in vacuolar tauopathy, using an integrated structural approach. The mutation destabilizes the interaction network in the transient ADP.Pi state previously identified in p97WT and alters the dynamics of the linker between the tandem ATPase domains, resulting in decreased ATPase activity. We further demonstrate that the D395G mutation sensitizes p97 to oxidative stress by enhancing C522 oxidation, thereby perturbing nucleotide binding in D2, and define the functional basis of this oxidative inactivation of p97. These findings reveal redox control as a key regulatory layer of the p97 ATPase cycle and provide a mechanistic framework for how oxidative stress contributes to p97-associated neurodegeneration.

molecular biology↗

Self-assembly is important for the target membrane recruitment of a nuclear dynamin-related protein

Dynamin superfamily proteins are large GTPases that perform their cellular functions by self-assembling on their target membranes. Dynamin-related protein 6 (Drp6) associates with the nuclear membrane and performs nuclear remodeling. However, the mechanism of its recruitment to the target membrane is not known. Here, we discover that self-assembly of Drp6 is essential for its nuclear membrane recruitment. We identified four residues, 411-GKFR-414 to be essential for its self-assembly. We also demonstrated that the mutant Drp6 (Drp6GKFR-AAAA) failed to recruit to the nuclear membrane. This loss of nuclear membrane recruitment is not due to the lack of membrane binding capability, since the mutated protein was able to bind membrane prepared in vitro. Together, our results suggest that in addition to membrane binding, self-assembly of a nuclear dynamin-related protein is also important for the target membrane recruitment.

cell biology↗