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Wendel, M.

Publications and source records attributed to Wendel, M..

3 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↗

Proteome-wide impact of LRRK1 and 2 inhibitors on protein interactions and phosphorylation

The Leucine-rich repeat kinases 1 and 2 (LRRK1 and 2) are large, multidomain proteins and closely related members of the Roco protein family. They share a high similarity in domain structure and are both phosphorylate members of the Rab GTPase family. However, despite these similarities, there are substantial differences between the two kinases. While mutations to LRRK1 are only implicated in rare cases of osteopetrosis, LRRK2 is associated with multiple diseases, most prominently with familial and sporadic forms of Parkinsons disease, where pathogenic LRRK2 is associated with an increased kinase activity. While LRRK2 has received major attention from the research community, LRRK1 has been largely understudied. In this work, we employ proximity labelling mass spectrometry in combination with quantitative phosphoproteomics in a model cell line to obtain the cellular interactomes of LRRK1 and LRRK2 and corresponding phosphorylation sites. We then use this dataset to characterize the impact of small molecules targeting both LRRK1 and 2. We identify phosphorylation sites across the proteome that are impacted by these inhibitors and identify novel candidate substrates for LRRK2, including MICALL2. Taken together our data provide a powerful resource for future studies on the cellular role and function of LRRK proteins and their potential use as therapeutic targets.

molecular biology↗

Selectivity profiles and substrate recognition of Rab phosphorylating kinases

The Rab GTPase switch-2 region is a hotspot for post-translational modifications. Its phosphorylation can determine whether individuals develop Parkinsons disease or not. Other modifications of the same region are catalysed by enzymes from bacterial pathogens when they infect human cells. Here, we profiled a set of kinases including LRRK1, LRRK2, DYRK1A, MST1, and TBK1 for their capability of phosphorylating Rab GTPases. We identified several novel kinase:Rab pairs, such as LRRK1:Rab43 and TBK1:Rab29. Further, we comprehensively assessed what makes a Rab GTPase a good kinase substrate, considering the Rab nucleotide binding state and the Rab primary sequence. In a systematic mutational study, Rab variants with modulated phosphorylation properties were established, leading to the identification of a LRRK2 recognition patch in the Rab 3 helix. A Glu to Arg exchange in that patch increased the phosphorylation 18-fold indicating that Rabs are suboptimal LRRK2 substrates. Given that this effect is also observed in a cellular model, we propose that our variants will be excellent tools for analysing the physiological function of Rab phosphorylation.

biochemistry↗