A previously unrecognized chromatin-to-metabolism axis connecting gain-of-function ASXL1 truncation to mitochondrial pyruvate transport is defined, identifying MPC as a central mediator of epigenetic-metabolic crosstalk in both a rare developmental syndrome and ASXL1-mutant myeloid malignancy.
Abstract
Bohring-Opitz syndrome (BOS, OMIM#605309) is a rare neurodevelopmental disorder caused by heterozygous and truncating variants in ASXL1 (Additional Sex Combs Like 1), a chromatin-associated epigenetic regulator that forms the catalytic PR-DUB complex with BAP1. Truncating ASXL1 variants are also recurrent somatic drivers in myeloid leukemia, yet the metabolic consequences of these mutations remain undefined. Using patient derived dermal fibroblasts, we show that truncating ASXL1 variants drive a Warburg-like metabolic state characterized by increased glycolytic flux, and accumulation of pyruvate and lactate. Truncated ASXL1 and BAP1 show aberrant co-occupancy at an H3K4me3-marked intronic regulatory element within MPC2 intron 1, with broadened ASXL1 occupancy extending beyond BRD4-defined regulatory boundaries while BRD4 positioning remains unchanged, consistent with aberrant PR-DUB complex spreading beyond its normally constrained chromatin territory. This altered occupancy is accompanied by modest but significant reduction in MPC2 transcript abundance and a disproportionately larger reduction in MPC1 and MPC2 protein levels, indicating that transcriptional dysregulation at this intronic element is amplified at the protein level through post-transcriptional mechanisms including impaired MPC1/MPC2 heterodimer stability. Pharmacologic MPC inhibition recapitulates both the metabolic and Wnt signaling phenotypes of BOS cells, while canonical Wnt activation increases glycolytic flux without reducing MPC abundance, establishing mitochondrial pyruvate restriction as causally upstream of signaling dysregulation. These findings define a previously unrecognized chromatin-to-metabolism axis connecting gain-of-function ASXL1 truncation to mitochondrial pyruvate transport, identifying MPC as a central mediator of epigenetic-metabolic crosstalk in both a rare developmental syndrome and ASXL1-mutant myeloid malignancy. Graphical Abstract Truncating and heterozygous ASXL1 variants cause a neurodevelopmental syndrome called Bohring-Opitz syndrome. (1) At an epigenetic level, we have shown that Truncating ASXL1 variants drive more open chromatin and aberrant activation of key developmental pathways. (2) Truncating ASXL1 mutations are sufficient to drive Decreased MPC1 and MPC2 protein levels. (3) Decreased MPC1 or MPC2 level or function are sufficient to drive increased glycolysis which is observed in BOS cells. (4) Truncating ASXL1 mutations drive Increased Wnt signaling via MPC depletion. * Increased Wnt signaling (4) is also sufficient to drive increased glycolysis (3), however Increased Wnt signaling does not drive Decreased MPC1 and MPC2 levels (2).
It is discovered that ASXL1 BOS variants drive reductions – but not global ablations – in H2AK119ub1, consistent with gain-of-function, and is emerging as a common phenotype across genetically and mechanistically distinct Polycomb-related chromatinopathies.
E. Doyle, Maeve Boyce, Sarah Buggle et al.· bioRxiv· 0 citations
The results support a dominant-negative mechanism for BRS causing truncating mutations, offering a compelling rationale for allele-specific ASO therapeutic strategy and new venues for treatment.
N. Mor, I. Shomer, S. Raviv et al.· medRxiv· 0 citations
ASXL3 patient truncations in neurodevelopmental condition Bainbridge-Ropers syndrome are shown to mediates gain-of-function (GOF) by escaping nonsense-mediated decay and Cullin 4-dependent degradation, resulting in aberrant protein accumulation, widespread transcriptional dysregulation, and altered chromatin accessibility.
Y. Nakamura, T. Nguyen, N. Mor et al.· medRxiv· 0 citations
This work provides a comprehensive framework that clarifies recent controversies—such as whether H4K16ac primarily governs transcription or replication timing, and which KAT8-containing complex catalyzes, which acetylation mark—and establishes a rationale for future precision-targeting strategies and biomarker development grounded in KAT8 functional heterogeneity.
The HECT-type E3 ubiquitin ligase HUWE1 is a critical regulator of protein homeostasis, genome stability, and neurodevelopment. Variants in HUWE1 are linked to X-linked intellectual disability (XLID), yet a significant number of HUWE1 variants are noncatalytic, leaving their disease mechanisms unresolved. Here, we identify an AMBRA1-RMC1-HUWE1 signaling axis that directs HUWE1-mediated ubiquitination to mitochondria to regulate neural development. In zebrafish, noncatalytic HUWE1 variants found in XLID patients (M375I, G660R, and H669Q) recapitulate key neurodevelopmental deficits, including impaired brain growth and motor neuron defects. Global ubiquitin profiling reveals that these variants selectively disrupt the ubiquitination of mitochondrial proteins without affecting nuclear substrates. Mechanistically, AMBRA1 acts as a mitochondrial scaffold that recruits RMC1, enabling HUWE1 localization to mitochondria through direct interaction with RMC1. Disruption of this recruitment by disease-associated HUWE1 variants prevents mitochondrial targeting and impairs mitochondrial substrate ubiquitination. Notably, Urolithin A treatment ameliorates neurodevelopmental phenotypes in HUWE1-deficient zebrafish. Together, our findings define an AMBRA1-organized mitochondrial recruitment pathway in which RMC1 links HUWE1 to mitochondria, explain noncatalytic HUWE1-associated XLID, and suggest mitochondrial quality-control enhancement as a potential therapeutic strategy.
Jiamin Yi, Qin Yang, Chun Zhou et al.· Proceedings of the National...· 0 citations
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