Functional analysis of PKLR p.Arg426Gln reveals isoform-specific aberrant PKR phosphorylation and PKL metabolic reprogramming

Pyruvate kinase deficiency (PKD) is an autosomal recessive hemolytic anemia caused by mutations in the PKLR gene, which encodes two tissue-specific isoforms: erythrocyte-specific PKR and hepatocyte-specific PKL. Although these isoforms share a common catalytic core and differ at their N-termini, how this N-terminal divergence shapes isoform-specific pathogenic mechanisms and contributes to the systemic manifestations of PKD remains unclear. Here, we investigated a PKD pedigree harboring a homozygous PKLR variant, NM_000298.6:c.1277G > A (p.Arg426Gln), to define its isoform-specific effects on PKR and PKL. Transcriptomic and proteomic profiling of the proband and healthy controls was used to identify mutation-associated pathway perturbations. Mechanistic studies employed isoform-specific cellular models (HEK293T for PKR-R426Q and THLE-2 for PKL-R395Q), site-directed mutagenesis, biochemical assays, and untargeted lipidomics. Zebrafish studies combined human PKLR mRNA expression, pharmacological rescue, and CRISPR/Cas9-mediated endogenous pklr disruption followed by rescue with human PKLR -WT or PKLR -R426Q mRNA. Functional analysis of the p.Arg426Gln mutation revealed distinct PKR- and PKL-associated pathogenic changes related to N-terminal divergence. Specifically, PKR-R426Q elicited PI3K-independent activation of PDPK1 and JAK2/STAT3 signaling, associated with increased AKT1 activation and aberrant phosphorylation involving the PKR-specific N-terminal S26 site. These alterations were accompanied by reduced PKR activity, glycolytic impairment, and MAPK suppression, and were partially ameliorated by pathway-directed pharmacological interventions in cellular models and human PKLR -R426Q mRNA-overexpressing zebrafish embryos. The glycolytic and erythroid phenotypes observed in h PKLR -R426Q mRNA-overexpressing zebrafish embryos were further supported by complementary genetic evidence from CRISPR/Cas9-mediated endogenous pklr disruption, in which the corresponding defects were rescued by human PKLR -WT but not PKLR -R426Q mRNA. Conversely, the homologous PKL-R395Q mutation exhibited phosphorylation-independent metabolic reprogramming, mitochondrial dysfunction, and lipid dysregulation. AG-348 improved PKR- and PKL-associated functional abnormalities in cellular and zebrafish models. Functional analysis suggests that N-terminal divergence contributes to the distinct pathogenic consequences of PKLR p.Arg426Gln in the PKR and PKL isoforms. The mutation appears to impair PKR mainly through aberrant phosphorylation-associated mechanisms, whereas PKL dysfunction is associated with phosphorylation-independent metabolic remodeling. These findings provide insight into genotype-phenotype correlations in PKD and highlight signaling and metabolic pathways that may warrant further therapeutic investigation.

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Journal
Cell Communication and Signaling
Published
2026-10-07
DOI
https://doi.org/10.1186/s12964-026-03293-1
Primary Topic
Erythrocyte Function and Pathophysiology
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article
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article

Functional analysis of PKLR p.Arg426Gln reveals isoform-specific aberrant PKR phosphorylation and PKL metabolic reprogramming

Jie Yang, 静 邹, Jie-wei Luo, Dan‐dan Ruan et al.
Cell Communication and Signaling
Erythrocyte Function and Pathophysiology
article

Functional analysis of PKLR p.Arg426Gln reveals isoform-specific aberrant PKR phosphorylation and PKL metabolic reprogramming

Jie Yang, 静 邹, Jie-wei Luo, Dan‐dan Ruan, Ying Chen, Lijun Xie, Jianhui Zhang, Ziyan Xu, Xiaoling Zheng, Li Zhang, Li-sheng Liao, Zhi-hai Zheng, Yan-feng Zhou, Fang-meng Huang, Juan Zhu, Ruo-li Wang, Hong-ping Yu, Bin Hu, Xiao-lan Wang, Mei-zhu Gao, Yi-jia Luo, Qian Chen, Yun-fei Li
article en

Abstract

Pyruvate kinase deficiency (PKD) is an autosomal recessive hemolytic anemia caused by mutations in the PKLR gene, which encodes two tissue-specific isoforms: erythrocyte-specific PKR and hepatocyte-specific PKL. Although these isoforms share a common catalytic core and differ at their N-termini, how this N-terminal divergence shapes isoform-specific pathogenic mechanisms and contributes to the systemic manifestations of PKD remains unclear. Here, we investigated a PKD pedigree harboring a homozygous PKLR variant, NM_000298.6:c.1277G > A (p.Arg426Gln), to define its isoform-specific effects on PKR and PKL. Transcriptomic and proteomic profiling of the proband and healthy controls was used to identify mutation-associated pathway perturbations. Mechanistic studies employed isoform-specific cellular models (HEK293T for PKR-R426Q and THLE-2 for PKL-R395Q), site-directed mutagenesis, biochemical assays, and untargeted lipidomics. Zebrafish studies combined human PKLR mRNA expression, pharmacological rescue, and CRISPR/Cas9-mediated endogenous pklr disruption followed by rescue with human PKLR -WT or PKLR -R426Q mRNA. Functional analysis of the p.Arg426Gln mutation revealed distinct PKR- and PKL-associated pathogenic changes related to N-terminal divergence. Specifically, PKR-R426Q elicited PI3K-independent activation of PDPK1 and JAK2/STAT3 signaling, associated with increased AKT1 activation and aberrant phosphorylation involving the PKR-specific N-terminal S26 site. These alterations were accompanied by reduced PKR activity, glycolytic impairment, and MAPK suppression, and were partially ameliorated by pathway-directed pharmacological interventions in cellular models and human PKLR -R426Q mRNA-overexpressing zebrafish embryos. The glycolytic and erythroid phenotypes observed in h PKLR -R426Q mRNA-overexpressing zebrafish embryos were further supported by complementary genetic evidence from CRISPR/Cas9-mediated endogenous pklr disruption, in which the corresponding defects were rescued by human PKLR -WT but not PKLR -R426Q mRNA. Conversely, the homologous PKL-R395Q mutation exhibited phosphorylation-independent metabolic reprogramming, mitochondrial dysfunction, and lipid dysregulation. AG-348 improved PKR- and PKL-associated functional abnormalities in cellular and zebrafish models. Functional analysis suggests that N-terminal divergence contributes to the distinct pathogenic consequences of PKLR p.Arg426Gln in the PKR and PKL isoforms. The mutation appears to impair PKR mainly through aberrant phosphorylation-associated mechanisms, whereas PKL dysfunction is associated with phosphorylation-independent metabolic remodeling. These findings provide insight into genotype-phenotype correlations in PKD and highlight signaling and metabolic pathways that may warrant further therapeutic investigation.

Cell Communication and Signaling
Fujian University of Traditional Chinese Medicine (CN), Fujian Medical University (CN), Capital Medical University (CN), Zhangzhou Municipal Hospital of Fujian Province (CN), Beijing Anzhen Hospital (CN), Fujian Provincial Hospital (CN), Fuzhou University (CN)
Openalex Percentile: Top 13%
Erythrocyte Function and Pathophysiology
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