ArticleBiochemical genetics2026
2,6-Diaminopurine Induces ACTN3 Premature Termination Codon Readthrough.
Article in Biochemical genetics, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.
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Abstract
The ACTN3 gene encodes a sarcomeric α-actinin-3 protein, which forms an anti-parallel dimer and constitutes the Z-lines in human skeletal muscle fast-twitch fibers. In human ACTN3, a nonsense mutation that replaces a CGA codon for the 577th arginine (R) residue with a TGA premature termination codon (PTC; specified as X) produces the R577X polymorphism. Since ACTN3 577X mRNA is targeted and degraded by a cellular nonsense-mediated mRNA decay (NMD) system, individuals with the homozygous ACTN3 577XX genotype do not express α-actinin-3 protein in the muscles, resulting in a decrease in speed-oriented athletic performance and muscle mass. The PTC has been a target for translational readthrough using aminoglycoside antibiotics, which enable the full-length α-actinin-3 protein to be produced from the ACTN3 577X gene. However, this effect requires a supraphysiological dose (mM levels) and supportive NMD inhibition. Using expression plasmids and HEK293 cultured cells, in this paper I show that 2,6-diaminopurine (DAP), a recently identified natural compound with translational readthrough activity, can produce a full-length α-actinin-3 protein from the ACTN3 577X gene even when used alone and at a relatively low concentration (µM levels). Most ACTN3 577X alleles likely contain three missense mutations (Q523R, R628C, and R776Q). Full-length α-actinin-3 proteins derived from the ACTN3 577X gene formed more homodimers than α-actinin-3 proteins derived from the ACTN3 577R gene. These results indicate that DAP-induced translational readthrough has the potential to restore function to the lost gene ACTN3 577X in humans.
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