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Periodic Paralysis Across the Life Course: Age-related Phenotype Transition and Sarcopenia Overlap

Overview
Journal Front Neurol
Date 2025 Jan 8
PMID 39777323
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Abstract

In Periodic Paralysis (PP), a rare inherited condition caused by mutation in skeletal muscle ion channels, the phenotype changes with age, transitioning from the episodic attacks of weakness that give the condition its name, to a more degenerative phenotype of permanent progressive weakness and myopathy. This leads to disability and reduced quality of life. Neither the cause of this phenotype transition, nor why it occurs around the age of 40 is known. However, 40 is also the age of onset of 'normal' age-related physiological decline when we consider (a) muscle mass and strength (b) physical function at the world class level and (c) age-related mitochondrial dysfunction. Elevated Na, mitochondrial dysfunction and sarcoplasmic Ca leak via the skeletal muscle ryanodine receptor (RyR1) have been implicated in both periodic paralysis myopathy and skeletal muscle ageing. We suggest this combination may trigger a negative spiral ultimately leading to progressive muscle failure. Understanding the interaction between ageing physiology and disease phenotype will provide a window into the healthy ageing process but also help understand how, and why PP phenotype changes with age. Understanding the mechanism underlying PP phenotype-transition and its link with ageing physiology, not only has the potential to identify the first disease modifying therapies for PP, but also to identify novel and potentially tractable mechanisms that contribute to sarcopenia, the pathological loss of muscle mass and function with age.

References
1.
Granic A, Suetterlin K, Shavlakadze T, Grounds M, Sayer A . Hallmarks of ageing in human skeletal muscle and implications for understanding the pathophysiology of sarcopenia in women and men. Clin Sci (Lond). 2023; 137(22):1721-1751. PMC: 10665130. DOI: 10.1042/CS20230319. View

2.
Mijares A, Allen P, Lopez J . Senescence Is Associated With Elevated Intracellular Resting [Ca] in Mice Skeletal Muscle Fibers. An Study. Front Physiol. 2021; 11:601189. PMC: 7837333. DOI: 10.3389/fphys.2020.601189. View

3.
Zwarts M, van Weerden T, Links T, Haenen H, OOSTERHUIS H . The muscle fiber conduction velocity and power spectra in familial hypokalemic periodic paralysis. Muscle Nerve. 1988; 11(2):166-73. DOI: 10.1002/mus.880110213. View

4.
Dodds R, Syddall H, Cooper R, Benzeval M, Deary I, Dennison E . Grip strength across the life course: normative data from twelve British studies. PLoS One. 2014; 9(12):e113637. PMC: 4256164. DOI: 10.1371/journal.pone.0113637. View

5.
Suetterlin K, Tan S, Mannikko R, Phadke R, Orford M, Eaton S . Ageing contributes to phenotype transition in a mouse model of periodic paralysis. JCSM Rapid Commun. 2022; 4(2):245-259. PMC: 8837191. DOI: 10.1002/rco2.41. View