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Biology subjects

Dang, T. L.

Publications and source records attributed to Dang, T. L..

2 recordsLinked to original sources

Structural polymorphism of alpha-synuclein fibrils alters pathway of Hsc70 mediated disaggregation

The pathological aggregation of -synuclein into amyloid fibrils is a hallmark of synucleinopathies including Parkinsons disease. Despite this commonality, synucleinopathies display divergent disease phenotypes that have been attributed to disease specific three-dimensional structures of -synuclein fibrils, each with a unique toxic gain-of-function profile. The Hsc70 chaperone is remarkable in its ability to disassemble pre-existing amyloid fibrils of different proteins in an ATP and co-chaperone dependent manner. We find however, using six well-defined conformational polymorphs of -synuclein fibrils, that the activity of the Hsc70 disaggregase machinery is sensitive to differences in the amyloid conformation, confirming that fibril polymorphism directly affects interactions with the proteostasis network. Amyloid conformation influences not only how efficiently fibrils are cleared by the Hsc70 machinery but also the preferred pathway of disaggregation. We further show that, in vitro, the active processing of fibrils by the Hsc70 machinery inadvertently produces seeding competent species that further promote protein aggregation. Amyloid conformation thus is an important feature that can tilt the balance between beneficial or detrimental protein quality control activities in the context of disease.

biochemistry↗

A unique chaperoning mechanism in Class A JDPs recognizes and stabilizes mutant p53.

J-domain proteins (JDPs) constitute a large family of molecular chaperones that bind a broad spectrum of substrates, targeting them to Hsp70, thus determining the specificity and activating the entire chaperone functional cycle. The malfunction of JDPs is therefore inextricably linked to myriad human disorders. Here we uncover a novel mechanism by which chaperones recognize misfolded clients, present in class-A JDPs. Through a newly-identified {beta}-hairpin site, these chaperones detect changes in protein dynamics at the initial stages of misfolding, prior to exposure of hydrophobic regions or large structural rearrangements. The JDPs then sequester misfolding-prone proteins into large oligomeric assemblies, protecting them from aggregation. Through this mechanism, class-A JDPs bind destabilized p53 mutants, preventing clearance of these oncoproteins by Hsp70-mediated degradation, thus promoting cancer progression. Removal of the {beta}-hairpin abrogates this protective activity while minimally affecting other chaperoning functions. This suggests the class-A JDP {beta}-hairpin as a highly specific target for cancer therapeutics.

biochemistry↗