bioRxiv Science⌕ Search

Biology subjects

Wieland, A. C.

Publications and source records attributed to Wieland, A. C..

2 recordsLinked to original sources

Conformational and Functional Regulation of SET by Legumain Cleavage

The cysteine protease legumain typically localizes to the endolysosomal system, where it is an important player in the immune system. However, in the context of Alzheimers disease (AD), legumain has been shown to be translocated to the cytosol, where it cleaves SET, synonymously termed TAF-1 or I2PP2A, an inhibitor of protein phosphatase 2A. SET is primarily found in the nucleus, where it regulates gene transcription, cell cycle progression, and histone acetylation, but can also translocate to the cytoplasm where it regulates cell migration and is implicated in neuronal apoptosis in AD. In this study, we demonstrate that legumain cleaves SET at two major sites: Asn16 at the N-terminal end and Asn175 at the earmuff domain. Contrary to previous findings, our biochemical and crystallographic experiments reveal that the corresponding N- and C-terminal cleavage products remain bound in a stable complex, rather than dissociating. Additionally, we show that the C-terminal acidic stretch of SET is essential for its binding to histone 1, and that cleavage impairs this interaction. Finally, we demonstrate that SET positively modulates PP2A activity. This effect is however abolished upon cleavage by legumain.

molecular biology↗

The activator domain of bacterial collagenases drives collagen recognition, unwinding and processing

Collagens form the resilient backbone of the extracellular matrix in mammals. Only few proteases are able to digest triple-helical collagen. Clostridial collagenases can efficiently process collagen. However, little is known about the mechanism of bacterial collagenolysis of either soluble collagen or the multi-hierarchically assembled, insoluble collagen fibers. Here we present a functional analysis of the distinct roles of the individual domains of collagenase G (ColG) from Hathewaya histolytica. A broad array of biochemical, biophysical, and enzymatic data consistently revealed unexpected synergistic and antagonistic interactions between the activator, peptidase and collagen-binding domains. We found the non-catalytic activator domain to act as a master regulator, coordinating the complex interactions to specifically recognize and process the diverse physiological substrates. The results presented here enable multiple applications such as the engineering of collagenase variants with selectivity for defined substrate states.

biochemistry↗