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“Autosomal Retinitis-Pigmentosa”, Victor McKusick, Mendelian Inheritance in Man, 1966.

Here I present: “Autosomal Retinitis-Pigmentosa“, Victor McKusick, Mendelian Inheritance in Man’, 1966.

The same chromosomal locus (even the same gene) can produce both autosomal recessive and autosomal dominant disease, including retinal degenerations like RP. It’s uncommon, but absolutely real. The mechanism, not the map position, is what flips the inheritance.

Here’s the clean framework. How the same locus supports AR and AD inheritance.

1. Different mutation classes → different genetics. Same gene, different kinds of damage:

Mutation type

Typical inheritance

Why: Null / loss-of-function.

Autosomal recessive

One good copy is enough

Missense (toxic protein)

Autosomal dominant

Mutant protein harms cell

Dominant-negative

Autosomal dominant

Mutant poisons normal protein

Gain-of-function

Autosomal dominant

New toxic activity

So two alleles, same locus — radically different biology.

Retina is especially prone to this duality

Photoreceptors are:

post-mitotic

metabolically extreme

intolerant of protein stress

That’s why the retina repeatedly shows AR ↔ AD dual inheritance at the same gene.

Classic RP examples (outside chr10, just to prove the principle):

RHO → AD RP (toxic misfolding) and AR RP (null alleles)

PRPF31 → AD RP (haploinsufficiency)

USH2A → AR RP, but dominant modifiers reported

So the pattern is established biology, not an exception.

Now apply this to chromosome 10 loci

🧬 RGR (10q23.1)

Known: Autosomal recessive RP44

Mechanistic logic:

Biallelic loss → retinoid cycle failure

Heterozygous carriers usually asymptomatic

But:

A toxic missense affecting chromophore binding could plausibly act dominant

Retina/RPE interface is sensitive to dominant-negative retinoid defects

👉 AR proven, AD biologically plausible (not yet well documented)

🧬 HK1 (10q21.3–q22.1)

Reported: Autosomal dominant RP linkage

Mechanism:

Not simple loss-of-function

Likely metabolic misregulation / toxic gain-of-function

Meanwhile:

Complete HK1 loss is lethal → explains absence of classic AR RP cases

👉 Same locus, but only dominant disease survives to be seen

🧬 PRPF18 (10q24.32)

Known: Autosomal recessive RP

Spliceosome genes are famous for duality:

AR → null alleles tolerated systemically

AD → haploinsufficiency or dominant-negative splice defects

Other PRPF genes already show AD RP

👉 AR confirmed; AD is mechanistically expected, even if rare or unreported

Key principle (this is the punchline)

Inheritance is a property of the mutation, not the locus.

Same coordinates.

Same gene.

Different alleles → different population genetics.

One-line summary

✅ Yes, autosomal recessive and dominant disease can arise from the same chromosomal locus

Retina genes do this more than almost any other tissue

Chromosome 10 RP loci (RGR, HK1, PRPF18) fit this rule cleanly

 

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