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Biology subjects

Varghese, N. R.

Publications and source records attributed to Varghese, N. R..

2 recordsLinked to original sources

Distinct TAF15 amyloid filament folds define multiple subtypes of FTLD-TAF15

Neurodegenerative diseases are characterised by the assembly of a limited number of disease-specific proteins into amyloid filaments, which form intracellular inclusions or extracellular deposits in the central nervous system (CNS)1,2. We previously found that amyloid filaments of TATA-binding protein-associated factor 15 (TAF15) characterise a subtype of frontotemporal lobar degeneration with FET protein-immunoreactive inclusions (FTLD-FET)3, termed atypical FTLD with ubiquitin-positive inclusions (aFTLD-U)4, which causes early-onset, rapidly progressive behavioural variant frontotemporal dementia (FTD). However, it was not clear if TAF15 proteinopathy was more widespread in neurodegenerative diseases. Two additional FTLD-FET subtypes have been proposed, neuronal intermediate filament inclusion body disease (NIFID) and basophilic inclusion body disease (BIBD)5,6, which have more heterogenous clinical presentations including FTD, motor neuron diseases (MND) and movement disorders. Here, we used electron cryo-microscopy (cryo-EM) to determine a total of 32 amyloid filament structures from the brains of 17 individuals encompassing all three proposed subtypes of FTLD-FET and their diverse clinical presentations. All cases were characterised by TAF15 filaments, in the absence of filaments of the other FET proteins, fused in sarcoma (FUS) and Ewings sarcoma (EWS). All three aFTLD-U cases had the previously-reported TAF15 fold3. Unexpectedly, we found four distinct TAF15 folds among 11 NIFID cases. Eight of these cases shared a common fold, while the remaining three were each distinct. Furthermore, we found distinct TAF15 folds for each of the three BIBD cases. Neuropathological reassessment of the neocortical TAF15 inclusion pathology of these cases distinguished the NIFID cases with the common fold from the others. Thus, TAF15 filament structures form the basis of a new, expanded classification of FTLD-FET subtypes. Moreover, we discovered a TAF15 Y38C variant in the filament fold of one of the individuals with BIBD. The structure is unable to incorporate wild-type TAF15, despite the individual being heterozygous, suggesting that this variant drives TAF15 filament assembly. This study provides structural and genetic evidence that TAF15 amyloid filaments underlie the diverse group of neurodegenerative diseases currently termed FTLD-FET, which we therefore rename FTLD-TAF15.

molecular biology↗

Structural Studies of an Anti-necroptosis Viral:Human Functional Hetero-amyloid M45:RIPK3 using SSNMR

The formation of RIP-homotypic interaction motif (RHIM)-based heteromeric amyloid assemblies between effector proteins such as RIPK1, ZBP1, or TRIF and the kinase RIPK3 serve as regulating signals for the necroptosis process, a key element of innate immune defense. Murine cytomegalovirus (MCMV) expresses the M45-encoded viral inhibitor of RIP activation (vIRA) which inhibits necroptosis in a RHIM-dependent manner. A pivotal question is how viral M45 forms hetero-amyloids with RIPK3 to effectively create an inhibitory assembly. We report a novel high-resolution structure of the M45:RIPK3 complex where M45 and RIPK3 alternately stack in an amyloid-state structure. Mutagenesis of the residues flanking the IQIG tetrad in M45 results in specific impacts on co-assembly with RIPK3, indicating an extended interface in the heteromeric fibrils. Other key interactions support the formation of stable viral:host fibrils. The M45: RIPK3 hetero-amyloid is likely to act as an anti-necroptotic signal by competing with formation of other pro-necroptotic species and introducing a barrier to RIPK3 autophosphorylation. Significance StatementThis study investigates the structural biology of the necroptotic pathway, an understudied programmed cell death mechanism that plays a crucial role in innate immunity and has implications for infectious diseases, cell cycle regulation, and cancer. We present the high-resolution structure of a cross-species hetero-amyloid in which M45, a murine cytomegalovirus (MCMV) protein, co-assembles with human RIPK3 to inhibit necroptosis by competing with pro-necroptotic amyloids. Using solid-state NMR, cryo-EM, mutagenesis, and biophysical analyses, we uncover a novel structural paradigm for cross-species hetero-amyloids, shedding light on viral strategies to manipulate host immunity and protein interactions.

biophysics↗