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RNA Methylation Enzyme METTL16 Emerges as Guardian of Rod Photoreceptor Survival

September 30, 2026
in Medicine
Juliet Wilcox
By Juliet Wilcox Scienmag Editorial Profile - Human Genetics
Reading Time: 6 mins read
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RNA Methylation Enzyme METTL16 Emerges as Guardian of Rod Photoreceptor Survival

RNA Methylation Enzyme METTL16 Emerges as Guardian of Rod Photoreceptor Survival

RNA Methylation Enzyme METTL16 Emerges as Guardian of Rod Photoreceptor Survival

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A single chemical tag on RNA, applied with exquisite precision, may be one of the unsung guardians of human vision. In a study published in the Journal of Advanced Research, researchers report that METTL16, an enzyme that installs N6-methyladenosine (m6A) marks on RNA molecules, is essential for keeping rod photoreceptors alive and functioning. When the team deleted the Mettl16 gene specifically from rod cells in mice, the animals developed progressive retinal degeneration, lost visual sensitivity, and showed molecular defects in splicing, mRNA stability, and protein synthesis. The findings open a new window onto the biology of inherited retinal dystrophies, a group of disorders that remain genetically unexplained in a substantial fraction of patients.

Inherited retinal dystrophies are a leading cause of irreversible blindness worldwide, and retinitis pigmentosa, the most common form, affects an estimated 2.5 million people. More than 100 causative genes have been identified, yet between 30 and 50 percent of cases still lack a genetic diagnosis, and the observation of incomplete penetrance hints that factors beyond DNA sequence are at work. Epigenetic mechanisms, which modulate gene expression without altering the genome, have increasingly come into focus in ocular disease. Among these, m6A stands out as the most abundant internal modification in eukaryotic messenger RNA, deposited by writer enzymes, removed by erasers such as FTO and ALKBH5, and interpreted by reader proteins that influence splicing, export, stability, and translation.

METTL16 is a relative newcomer to the m6A field. Unlike the well-known METTL3/METTL14 complex, it recognizes a specific motif, UACAGARAA, within structured RNA contexts, and its validated substrates include MAT2A mRNA, which it regulates to maintain cellular levels of the universal methyl donor S-adenosylmethionine, and U6 snRNA, a small nuclear RNA at the heart of the splicing machinery. METTL16 methylates U6 at position A43 within the ACAGAGA sequence that base-pairs with the 5′ splice site of introns during pre-mRNA splicing. Work in fission yeast, roundworms, plants, and human cells has shown that losing this modification impairs 5′ splice site recognition. Intriguingly, dominant mutations in U6 snRNA have recently been linked to autosomal dominant retinitis pigmentosa, and those variants cluster in regions that contact spliceosome components such as PRPF3, PRPF8, and PRPF31, proteins that are themselves mutated in RP.

To probe METTL16’s role in the retina, the team, led by Jiangbo Ren, Wenjing Liu, and colleagues, generated rod-specific Mettl16 knockout mice by crossing Mettl16-floxed animals with RHO-Cre mice, in which the recombinase is active only in rods. The resulting RKO mice showed efficient excision of the targeted exon and a marked reduction of METTL16 protein in the retina. Single-cell RNA sequencing data from the Human Protein Atlas had already indicated that METTL16 is broadly expressed across retinal cell types, with notable enrichment in rods, making the knockout strategy well suited to testing its function in the cells most vulnerable to retinitis pigmentosa.

The physiological consequences were swift and measurable. Electroretinograms recorded at one month of age revealed that scotopic responses, which reflect rod function, were severely blunted: a-wave and b-wave amplitudes were reduced by roughly 54 and 55 percent, respectively, compared with littermate controls. Cone-mediated photopic responses, by contrast, were largely preserved at this stage, pointing to a rod-first pattern of degeneration. Behavioral assays corroborated the electrophysiology. In a light-dark box test, RKO mice spent only about 39 percent of their time and traveled about 42 percent of their distance in the dark chamber, unlike control mice, which normally prefer darkness. Their optomotor response, a reflexive head movement that tracks rotating visual gratings, dropped to 1.56, well below the values of 2.0 or higher seen in controls.

Under the microscope, the story continued. At postnatal day 20, retinal architecture looked normal, but by day 30 the outer nuclear layer and outer segments of RKO retinas were visibly thinning, and by day 40 the outer nuclear layer had lost roughly 40 percent of its thickness relative to controls. Immunofluorescence showed that key outer segment proteins, including rhodopsin, PRPH2, GRK1, PDE6B, and CNGA1, were markedly reduced in abundance even though their localization within the photoreceptor was not disrupted. Signs of degenerative stress were everywhere: Müller glia became reactive, microglia adopted an amoeboid morphology and invaded the outer nuclear layer, and TUNEL staining detected apoptotic nuclei among the photoreceptors. Cones, meanwhile, showed only delayed involvement, with reduced M-opsin-positive cells appearing by day 40.

To trace the molecular roots of this collapse, the researchers integrated RNA sequencing with quantitative proteomics on one-month-old retinas. Among the genes concordantly downregulated at both the transcript and protein levels, Gene Ontology and KEGG analyses pointed squarely at photoreceptor development, photoreceptor cilia, inner and outer segments, visual perception, and the phototransduction cascade. Five established retinitis pigmentosa genes emerged from this analysis: Tulp1, Cnga1, Pde6g, Crb1, and Prcd. Four of them showed significant differential expression at both levels after correction for multiple testing, and the reductions were confirmed by RT-qPCR and Western blotting. The metabolic arm of the analysis revealed perturbations in the S-adenosylmethionine pathway as well, with Mat2a mRNA, a direct METTL16 substrate, reduced in knockout retinas, and Csad, a key enzyme of taurine biosynthesis, markedly decreased.

The mechanistic core of the paper lies in splicing. Using a single-base elongation and ligation-based qPCR assay called SELECT on purified U6 snRNA, the team confirmed that m6A at position A43 was reduced in knockout retinas. Transcriptome-wide analysis with rMATS then revealed extensive alternative splicing changes, with skipped exons as the predominant event class. Sequence analysis of affected 5′ splice sites showed a telling pattern: sites whose usage decreased in knockout retinas were enriched for adenosine at the +4 position, the very nucleotide engaged by methylated U6, and carried an RAG motif across the U6-interacting positions, whereas sites with increased usage favored stronger U5 snRNA base pairing and non-adenine nucleotides at +4. Crucially, aberrant splicing was already detectable at postnatal day 20, before any overt cell loss. Both Tulp1 and Pde6g, two established retinal dystrophy genes, showed increased exon skipping, and the affected donor sites shared the conserved //GURAG motif previously implicated in METTL16 loss in plants and worms. MeRIP-seq showed no change in m6A enrichment on the Tulp1 and Pde6g transcripts themselves, consistent with a U6-dependent mechanism rather than direct methylation of the mRNAs. The Tulp1 exon 4-skipped transcript is predicted to encode an in-frame deletion of 51 amino acids, and immunostaining revealed disrupted ribbon synapse architecture in knockout retinas, echoing the synaptic defects known from Tulp1 knockout mice.

The study also documented METTL16’s influence beyond the nucleus. MeRIP-seq identified Tor1b and Nlgn2 as candidate direct m6A targets, with reduced methylation in their 3′ untranslated regions and reduced expression in knockout retinas; luciferase reporter assays showed that wild-type METTL16 enhanced reporters bearing the wild-type 3′ UTRs but not motif-mutated versions, and a catalytic-domain-deficient METTL16 mutant failed to do so. In photoreceptor-derived 661W cells, loss of METTL16 accelerated the decay of both transcripts, indicating effects on mRNA stability. Meanwhile, immunoprecipitation coupled with mass spectrometry revealed that retinal METTL16 associates with translation factors including PURA, PABPC1, and EIF3B, and with the splicing factors SF3B1 and SF3B3. SUnSET assays and polysome profiling showed that Mettl16 knockdown reduced global translation efficiency in 661W cells, and polysome analysis confirmed diminished translational efficiency of phototransduction genes such as Cep164, Rpgr, Prph2, and Cnga1, whose mRNA levels were unchanged even as their proteins declined.

The authors are careful to note the limitations: most molecular analyses used bulk retinal tissue, which can blur cell-type-specific effects and mix primary METTL16-dependent events with secondary degenerative changes, and the mechanistic work relied on the 661W cell line because mature rods are difficult to manipulate in vitro. Catalytically dead rescue experiments and ribosome profiling will be needed to determine whether the translational role depends on methyltransferase activity. Even so, the picture that emerges is striking. METTL16, working in both the nucleus and the cytoplasm, appears to safeguard photoreceptors on at least three fronts: by methylating U6 snRNA to preserve splicing fidelity in dystrophy genes, by stabilizing specific m6A-marked transcripts, and by supporting the translation of the proteins that build the light-sensing machinery. Given that mutations in U6 snRNA and multiple spliceosome components cause retinitis pigmentosa in humans, the study suggests that RNA processing defects may be a broader and previously underappreciated theme in photoreceptor disease, one that could eventually inform diagnostic and therapeutic strategies for the many patients whose blindness still has no genetic explanation.

Subject of Research: The role of the m6A methyltransferase METTL16 in photoreceptor survival and retinal degeneration

Article Title: METTL16 maintains photoreceptor integrity via splicing fidelity, mRNA stability, and translational regulation

Article References: Ren, J., Liu, W., Zou, R., Sun, K., Yang, M., Zhu, X., & Yang, Z. (2026). METTL16 maintains photoreceptor integrity via splicing fidelity, mRNA stability, and translational regulation. Journal of Advanced Research. https://doi.org/10.1016/j.jare.2026.09.012

Image Credits: AI Generated

DOI: 10.1016/j.jare.2026.09.012

Keywords: METTL16, m6A, photoreceptors, retinitis pigmentosa, U6 snRNA, alternative splicing, RNA methylation, retinal degeneration, translation regulation, Tulp1, Pde6g, epitranscriptomics

Cite Scienmag News

Juliet Wilcox. (September 30, 2026). RNA Methylation Enzyme METTL16 Emerges as Guardian of Rod Photoreceptor Survival. Scienmag. https://scienmag.com/rna-methylation-enzyme-mettl16-emerges-as-guardian-of-rod-photoreceptor-survival/

Juliet Wilcox. "RNA Methylation Enzyme METTL16 Emerges as Guardian of Rod Photoreceptor Survival." Scienmag, 30 September 2026, https://scienmag.com/rna-methylation-enzyme-mettl16-emerges-as-guardian-of-rod-photoreceptor-survival/. Accessed 30 September 2026.

Juliet Wilcox. "RNA Methylation Enzyme METTL16 Emerges as Guardian of Rod Photoreceptor Survival." Scienmag. September 30, 2026. https://scienmag.com/rna-methylation-enzyme-mettl16-emerges-as-guardian-of-rod-photoreceptor-survival/

Tags: alternative splicingepigenetic regulation of gene expression in visionepitranscriptomicsgene editing in retinal cell studiesgenetic and epigenetic factors in retinitis pigmentosainherited retinal dystrophies and epigeneticsm6AMETTL16METTL16 enzyme in retinal healthmolecular mechanisms of retinal degenerationPde6gphotoreceptorsretinal degenerationretinitis pigmentosaRNA methylationRNA methylation enzymes and neurodegenerationRNA modifications in photoreceptor survivalRNA splicing and mRNA stability in eye diseasesRNA-based therapeutic targets for retinal disordersrole of m6A in visiontranslation regulationTulp1U6 snRNA
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