Succinate supplementation ameliorates musculoskeletal defects caused by PLOD3 mutations in a BCARD syndrome model.
Overview
- Department of Medicine, Division of Genetic Medicine, Vanderbilt University Medical Center, 1165 Light Hall, 2215 Garland Ave., Nashville, TN 37232 USA
- Vanderbilt Genetic Institute, Vanderbilt University Medical Center, Nashville, TN 37232 USA
- Department of Cell and Developmental Biology, Vanderbilt University, Nashville, TN 37232 USA
- Present address: Laboratory of Metabolic Regulation and Genetics, The Rockefeller University, New York, NY 10065 USA
- Present address: Department of Psychiatry, Yale University School of Medicine, New Haven, 06510 CT USA
- Genomic Medicine Center of Excellence, King Faisal Specialist Hospital and Research Center, Riyadh, Saudi Arabia
- Developmental Biology, Institute Biology I, University of Freiburg, Hauptstrasse 1, Freiburg, 79104 Germany
- Clare Hall, University of Cambridge, Cambridge, CB3 9AL UK
- College of Medicine, Alfaisal University, Riyadh, Saudi Arabia
Abstract
Background: BCARD syndrome is a rare complex connective tissue disorder associated with variants in the PLOD3 gene, presenting with musculoskeletal, vascular, and sensory deficits. The role of PLOD3 in post-translational modifications of collagens has been established. However, limited treatment options exist to correct connective tissue deficits linked to PLOD3, largely due to sparse knowledge of cellular and molecular mechanisms driving phenotypic changes.
Methods: To explain the mechanisms of PLOD3 genotype-phenotype associations, we have used clinical data, molecular assays in patient-derived fibroblasts, perturbation experiments in zebrafish models, cellular and molecular experiments, and unbiased genome- and transcriptome-wide approaches.
Results: We show that wild-type human PLOD3 mRNA partially rescued musculoskeletal, vascular, and brain phenotypes in zebrafish plod3 mutants, while clinically identified variants had only a limited effect, validating the pathogenicity of the variants and the high conservation of PLOD3 function across vertebrates. We found that, at the molecular level, organ systems selectively upregulated the PERK pathway of the Unfolded Protein Response and subsequently activated autophagy as an adaptive response to an extracellular matrix (ECM) protein backlog; however, autophagy inhibitors did not rescue the plod3 mutant phenotypes. Bulk RNA-seq analysis of plod3 mutants revealed downregulation of genes in metabolic pathways, including the electron transport chain and the tricarboxylic acid (TCA) cycle, consistent with structural defects in electron micrographs of mitochondria. Search of Drug Repurposing Data Portals identified a dietary supplement, succinate, to be associated with PLOD3 and 25 additional genes, involved in the TCA cycle and collagen synthetic pathways. We showed that treatment with succinate ameliorated BCARD features, i.e., musculoskeletal defects, and restored reduced expression of TCA cycle genes in the zebrafish model.
Conclusions: Our data indicate that the interaction between ECM synthesis and mitochondrial energy metabolism offers an entry point for novel therapies to prevent complex connective tissue decline in BCARD and, potentially, in other rare and common musculoskeletal disorders and conditions such as aging, cancer, or injury. Moreover, the genetic models developed here, and succinate, should be valuable tools in future studies of the underlying mechanisms of the BCARD extensive medical phenome.
Supplementary Information: The online version contains supplementary material available at 10.1186/
Reproduced under the paper's license (CC BY), from the paper cited above.
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Data
Datasets cited
- geo:GSE318257, at NCBI GEO; found in “Data availability”
Data availability
The RNA-seq datasets generated and analyzed during the current study are available in the Gene Expression Omnibus (GEO) repository, accession number [GSE318257 (https://
Reproduced under the paper's license (CC BY), from the paper cited above.
Versions
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Version 1, 30 September 2026: the first record
Recorded: type, language, journal, volume, issue, pages, dates, 13 authors, 7 keywords, 7 MeSH terms, 5 funders, 89 references.
Cite
This paper
Choudhary, D., Unlu, G., Nagai, T. H., Melville, D. B., Scalici, A., Hashem, M. O., Ritter, D. J., Schmidt, G., Guthrie, C. L., Gamazon, E. R., Alkuraya, F. S., Cox, N. J., & Knapik, E. W. (2026). Succinate supplementation ameliorates musculoskeletal defects caused by PLOD3 mutations in a BCARD syndrome model. Genome medicine, 18(1), 29. https://
BibTeX
@article{choudhary2026su
author = {Choudhary, Dharmendra and Unlu, Gokhan and Nagai, Taylor H and Melville, David B and Scalici, Alexandra and Hashem, Mais O and Ritter, Dylan J and Schmidt, Georg and Guthrie, Cory L and Gamazon, Eric R and Alkuraya, Fowzan S and Cox, Nancy J and Knapik, Ela W},
title = {{Succinate supplementation ameliorates musculoskeletal defects caused by PLOD3 mutations in a BCARD syndrome model}},
journal = {Genome medicine},
year = {2026},
month = mar,
volume = {18},
number = {1},
pages = {29},
publisher = {BMC},
issn = {1756-994X},
doi = {10.1186/
url = {https://
pmid = {41827019},
pmcid = {PMC12994257}
}
RIS
TY - JOUR
AU - Choudhary, Dharmendra
AU - Unlu, Gokhan
AU - Nagai, Taylor H
AU - Melville, David B
AU - Scalici, Alexandra
AU - Hashem, Mais O
AU - Ritter, Dylan J
AU - Schmidt, Georg
AU - Guthrie, Cory L
AU - Gamazon, Eric R
AU - Alkuraya, Fowzan S
AU - Cox, Nancy J
AU - Knapik, Ela W
TI - Succinate supplementation ameliorates musculoskeletal defects caused by PLOD3 mutations in a BCARD syndrome model
T2 - Genome medicine
J2 - Genome Med
PY - 2026
DA - 2026/
VL - 18
IS - 1
SP - 29
SN - 1756-994X
PB - BMC
DO - 10.1186/
UR - https://
LA - en
ER -
CSL-JSON
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