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1.
J Cell Biol ; 223(10)2024 Oct 07.
Article de Anglais | MEDLINE | ID: mdl-38967608

RÉSUMÉ

Peroxisomes are membrane-bound organelles harboring metabolic enzymes. In humans, peroxisomes are required for normal development, yet the genes regulating peroxisome function remain unclear. We performed a genome-wide CRISPRi screen to identify novel factors involved in peroxisomal homeostasis. We found that inhibition of RNF146, an E3 ligase activated by poly(ADP-ribose), reduced the import of proteins into peroxisomes. RNF146-mediated loss of peroxisome import depended on the stabilization and activity of the poly(ADP-ribose) polymerases TNKS and TNKS2, which bind the peroxisomal membrane protein PEX14. We propose that RNF146 and TNKS/2 regulate peroxisome import efficiency by PARsylation of proteins at the peroxisome membrane. Interestingly, we found that the loss of peroxisomes increased TNKS/2 and RNF146-dependent degradation of non-peroxisomal substrates, including the ß-catenin destruction complex component AXIN1, which was sufficient to alter the amplitude of ß-catenin transcription. Together, these observations not only suggest previously undescribed roles for RNF146 in peroxisomal regulation but also a novel role in bridging peroxisome function with Wnt/ß-catenin signaling during development.


Sujet(s)
Axine , Péroxysomes , Ubiquitin-protein ligases , Voie de signalisation Wnt , Péroxysomes/métabolisme , Péroxysomes/génétique , Ubiquitin-protein ligases/métabolisme , Ubiquitin-protein ligases/génétique , Humains , Axine/métabolisme , Axine/génétique , Protéines membranaires/métabolisme , Protéines membranaires/génétique , bêta-Caténine/métabolisme , bêta-Caténine/génétique , Cellules HEK293 , Transport des protéines , Systèmes CRISPR-Cas
2.
bioRxiv ; 2024 Feb 04.
Article de Anglais | MEDLINE | ID: mdl-38352406

RÉSUMÉ

Peroxisomes are membrane-bound organelles harboring metabolic enzymes. In humans, peroxisomes are required for normal development, yet the genes regulating peroxisome function remain unclear. We performed a genome-wide CRISPRi screen to identify novel factors involved in peroxisomal homeostasis. We found that inhibition of RNF146, an E3 ligase activated by poly(ADP-ribose), reduced the import of proteins into peroxisomes. RNF146-mediated loss of peroxisome import depended on the stabilization and activity of the poly(ADP-ribose) polymerase tankyrase, which binds the peroxisomal membrane protein PEX14. We propose that RNF146 and tankyrase regulate peroxisome import efficiency by PARsylation of proteins at the peroxisome membrane. Interestingly, we found that the loss of peroxisomes increased tankyrase and RNF146-dependent degradation of non-peroxisomal substrates, including the beta-catenin destruction complex component AXIN1, which was sufficient to alter the amplitude of beta-catenin transcription. Together, these observations not only suggest previously undescribed roles for RNF146 in peroxisomal regulation, but also a novel role in bridging peroxisome function with Wnt/beta-catenin signaling during development.

3.
Nat Commun ; 14(1): 632, 2023 02 09.
Article de Anglais | MEDLINE | ID: mdl-36759523

RÉSUMÉ

Development is generally viewed as one-way traffic of cell state transition from primitive to developmentally advanced states. However, molecular mechanisms that ensure the unidirectional transition of cell fates remain largely unknown. Through exact transcription start site mapping, we report an evolutionarily conserved BTB domain-containing zinc finger protein, ZBTB12, as a molecular barrier for dedifferentiation of human pluripotent stem cells (hPSCs). Single-cell RNA sequencing reveals that ZBTB12 is essential for three germ layer differentiation by blocking hPSC dedifferentiation. Mechanistically, ZBTB12 fine-tunes the expression of human endogenous retrovirus H (HERVH), a primate-specific retrotransposon, and targets specific transcripts that utilize HERVH as a regulatory element. In particular, the downregulation of HERVH-overlapping long non-coding RNAs (lncRNAs) by ZBTB12 is necessary for a successful exit from a pluripotent state and lineage derivation. Overall, we identify ZBTB12 as a molecular barrier that safeguards the unidirectional transition of metastable stem cell fates toward developmentally advanced states.


Sujet(s)
Cellules souches pluripotentes , ARN long non codant , Animaux , Humains , Primates/génétique , Différenciation cellulaire/génétique , ARN long non codant/génétique , Feuillets embryonnaires/métabolisme , Protéines de liaison à l'ADN/génétique , Protéines de liaison à l'ADN/métabolisme , Facteurs de transcription/génétique , Facteurs de transcription/métabolisme
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