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Klaiss, A.

Publications and source records attributed to Klaiss, A..

3 recordsLinked to original sources

SMCHD1 loss re-wires MYOD1 enhancer nexuses and chromatin accessibility landscapes in muscle cells

Human SMCHD1 (Structural Maintenance of Chromosomes Flexible Hinge Domain Containing 1) is a chromatin architectural protein linked to heterochromatin repression. Loss of function mutations of SMCHD1 cause facioscapulohumeral muscular dystrophy type 2 (FSHD2) through activation of the DUX4 homeobox transcription factor gene. However, it is unknown how SMCHD1 may regulate myogenic transcription independently of DUX4. Here, we show that SMCHD1 safeguards enhancer organization within the three-dimensional (3D) genome in human myoblasts. Loss of SMCHD1 leads to widespread gains in chromatin accessibility, aberrant transcription and a global redistribution of the myogenic transcription factor MYOD1. Integrative analyses of histone modifications, chromatin accessibility, Hi-C looping, and activity-by-contact enhancer-gene modeling reveal that SMCHD1 loss rewires the landscape of clustered enhancers and promotes the emergence of a new MYOD1-related network of enhancer elements, termed MYOD1 enhancer nexuses. These structures are marked by increased enhancer-enhancer connectivity, increased local 3D chromatin interactions, and coordinated activation of genes likely relevant for FSHD pathology. Together, our findings identify SMCHD1 as a key architectural constraint that suppresses hyperactive enhancer networks, thereby preserving transcriptional homeostasis in myoblasts.

molecular biology↗

HSP-1-Specific Nanobodies Alter Chaperone Function in vitro and in vivo

Targeted regulation of 70 kilodalton Heat Shock Protein (HSP70) chaperones, particularly the essential cognate heat shock protein (HSC70) and its Caenorhabditis elegans ortholog, HSP-1, may hold the key to improving cellular proteostasis and ameliorating aging-associated conditions linked to protein misfolding and aggregation. However, tools to selectively modulate HSP70 chaperone activity remain elusive. In this study, we pioneer the development of two novel nanobodies, B12 and H5, which specifically bind to both recombinant and endogenous HSP-1. We show that these nanobodies, differing by only two amino acids in their complementarity-determining regions, bind specifically to HSP-1 and effectively reduce both HSP-1 ATPase activity and protein folding capacity in a dose-dependent manner in vitro. We further demonstrate in vivo expression of B12, but not H5, in transgenic C. elegans strains reduces heat-stress survival and proteotoxic-stress resistance, mirroring the effects of hsp-1 knockdown via RNA interference. Our findings suggest that these nanobodies can serve as effective and specific tools for modulating HSP-1 chaperone activity in vivo. These discoveries provide a foundation for future research exploring the therapeutic potential of HSP70-targeting nanobodies in aging and protein misfolding diseases.

biochemistry↗

Functionally diversified BiP orthologs control body growth, reproduction, stress resistance, aging, and ER-Phagy in Caenorhabditis elegans.

Cellular systems that govern protein folding rely on a delicate balance of functional redundancy and diversification to maintain protein homeostasis (proteostasis). Here, we use Caenorhabditis elegans to demonstrate how both overlapping and divergent activities of two homologous endoplasmic reticulum (ER)-resident HSP70 family chaperones, HSP-3 and HSP-4, orchestrate ER proteostasis and contribute to organismal physiology. We identify tissue-, age-, and stress-specific protein expression patterns and find both redundant and distinct functions for HSP-3 and HSP-4 in ER stress resistance, reproduction, and body size regulation. We show that only HSP-3 overexpression is sufficient to improve longevity and that loss of HSP-3 or HSP-4 during distinct stages of the worm cycle or specific tissues have opposing effects on worm lifespan. Furthermore, we find that loss of HSP-4, but not HSP-3, improves tolerance to protein aggregation induced-stress by activating ER-Phagy through the engagement of IRE-1 and the putative ER-Phagy receptor, C18E9.2. Mechanistically, we show that de-repression of IRE-1 via HSP-4 dissociation allows for direct inhibition of C18E9.2- mediated ER-Phagy and demonstrate that a conserved orthologous mechanism involving the respective human orthologs, BiP, Sec-62, and IRE-1, contributes to ER proteostasis regulation in human cells. Taken as a whole, our study demonstrates that functional diversification of orthologous proteins within a single organelle is an efficient mechanism to maximize stress resilience while also defining a novel link between ER- phagy and proteostasis regulation.

physiology↗