99 research outputs found
Meta-analysis of erosive hand osteoarthritis identifies four common variants that associate with relatively large effect
[Abstract] Objectives: Erosive hand osteoarthritis (EHOA) is a severe subset of hand osteoarthritis (OA). It is unclear if EHOA is genetically different from other forms of OA. Sequence variants at ten loci have been associated with hand OA but none with EHOA.
Methods: We performed meta-analysis of EHOA in 1484 cases and 550 680 controls, from 5 populations. To identify causal genes, we performed eQTL and plasma pQTL analyses, and developed one zebrafish mutant. We analysed associations of variants with other traits and estimated shared genetics between EHOA and other traits.
Results: Four common sequence variants associated with EHOA, all with relatively high effect. Rs17013495 (SPP1/MEPE, OR=1.40, p=8.4×10-14) and rs11243284 (6p24.3, OR=1.35, p=4.2×10-11) have not been associated with OA, whereas rs11631127 (ALDH1A2, OR=1.46, p=7.1×10-18), and rs1800801 (MGP, OR=1.37, p=3.6×10-13) have previously been associated with hand OA. The association of rs1800801 (MGP) was consistent with a recessive mode of inheritance in contrast to its additive association with hand OA (OR homozygotes vs non-carriers=2.01, 95% CI 1.71 to 2.37). All four variants associated nominally with finger OA, although with substantially lower effect. We found shared genetic components between EHOA and other OA measures, grip strength, urate levels and gout, but not rheumatoid arthritis. We identified ALDH1A2, MGP and BMP6 as causal genes for EHOA, with loss-of-function Bmp6 zebrafish mutants displaying EHOA-like phenotypes.
Conclusions: We report on significant genetic associations with EHOA. The results support the view of EHOA as a form of severe hand OA and partly separate it from OA in larger joints
Recessive mutations in muscle-specific isoforms of FXR1 cause congenital multi-minicore myopathy
FXR1 is an alternatively spliced gene that encodes RNA binding proteins (FXR1P) involved in muscle development. In contrast to other tissues, cardiac and skeletal muscle express two FXR1P isoforms that incorporate an additional exon-15. We report that recessive mutations in this particular exon of FXR1 cause congenital multi-minicore myopathy in humans and mice. Additionally, we show that while Myf5-dependent depletion of all FXR1P isoforms is neonatal lethal, mice carrying mutations in exon-15 display non-lethal myopathies which vary in severity depending on the specific effect of each mutation on the protein
Loss of Myotubularin Function Results in T-Tubule Disorganization in Zebrafish and Human Myotubular Myopathy
Myotubularin is a lipid phosphatase implicated in endosomal trafficking in vitro, but with an unknown function in vivo. Mutations in myotubularin cause myotubular myopathy, a devastating congenital myopathy with unclear pathogenesis and no current therapies. Myotubular myopathy was the first described of a growing list of conditions caused by mutations in proteins implicated in membrane trafficking. To advance the understanding of myotubularin function and disease pathogenesis, we have created a zebrafish model of myotubular myopathy using morpholino antisense technology. Zebrafish with reduced levels of myotubularin have significantly impaired motor function and obvious histopathologic changes in their muscle. These changes include abnormally shaped and positioned nuclei and myofiber hypotrophy. These findings are consistent with those observed in the human disease. We demonstrate for the first time that myotubularin functions to regulate PI3P levels in a vertebrate in vivo, and that homologous myotubularin-related proteins can functionally compensate for the loss of myotubularin. Finally, we identify abnormalities in the tubulo-reticular network in muscle from myotubularin zebrafish morphants and correlate these changes with abnormalities in T-tubule organization in biopsies from patients with myotubular myopathy. In all, we have generated a new model of myotubular myopathy and employed this model to uncover a novel function for myotubularin and a new pathomechanism for the human disease that may explain the weakness associated with the condition (defective excitation–contraction coupling). In addition, our findings of tubuloreticular abnormalities and defective excitation-contraction coupling mechanistically link myotubular myopathy with several other inherited muscle diseases, most notably those due to ryanodine receptor mutations. Based on our findings, we speculate that congenital myopathies, usually considered entities with similar clinical features but very disparate pathomechanisms, may at their root be disorders of calcium homeostasis
Increased Muscle Stress-Sensitivity Induced by Selenoprotein N Inactivation in Mouse: A Mammalian Model for SEPN1-Related Myopathy
Selenium is an essential trace element and selenoprotein N (SelN) was the first selenium-containing protein shown to be directly involved in human inherited diseases. Mutations in the SEPN1 gene, encoding SelN, cause a group of muscular disorders characterized by predominant affection of axial muscles. SelN has been shown to participate in calcium and redox homeostasis, but its pathophysiological role in skeletal muscle remains largely unknown. To address SelN function in vivo, we generated a Sepn1-null mouse model by gene targeting. The Sepn1−/− mice had normal growth and lifespan, and were macroscopically indistinguishable from wild-type littermates. Only minor defects were observed in muscle morphology and contractile properties in SelN-deficient mice in basal conditions. However, when subjected to challenging physical exercise and stress conditions (forced swimming test), Sepn1−/− mice developed an obvious phenotype, characterized by limited motility and body rigidity during the swimming session, as well as a progressive curvature of the spine and predominant alteration of paravertebral muscles. This induced phenotype recapitulates the distribution of muscle involvement in patients with SEPN1-Related Myopathy, hence positioning this new animal model as a valuable tool to dissect the role of SelN in muscle function and to characterize the pathophysiological process
Uncovering the Importance of Selenium in Muscle Disease
A connection between selenium bioavailability and development of muscular
disorders both in humans and livestock has been established for a long time.
With the development of genomics, the function of several selenoproteins was
shown to be involved in muscle activity, including SELENON, which was linked to
an inherited form of myopathy. Development of animal models has helped to dissect
the physiological dysfunction due to mutation in the SELENON gene; however the
molecular activity remains elusive and only recent analysis using both in vivo and
in vitro experiment provided hints toward its function in oxidative stress defence
and calcium transport control. This review sets out to summarise most recent findings
for the importance of selenium in muscle function and the contribution of this
information to the design of strategies to cure the diseases
Selenium biochemistry and its role for human health
Despite its very low level in humans, selenium plays an important and unique role among the (semi)metal trace essential elements because it is the only one for which incorporation into proteins is genetically encoded, as the constitutive part of the 21st amino acid, selenocysteine. Twenty-five selenoproteins have been identified so far in the human proteome. The biological functions of some of them are still unknown, whereas for others there is evidence for a role in antioxidant defence, redox state regulation and a wide variety of specific metabolic pathways. In relation to these functions, the selenoproteins emerged in recent years as possible biomarkers of several diseases such as diabetes and several forms of cancer. Comprehension of the selenium biochemical pathways under normal physiological conditions is therefore an important requisite to elucidate its preventing/therapeutic effect for human diseases. This review summarizes the most recent findings on the biochemistry of active selenium species in humans, and addresses the latest evidence on the link between selenium intake, selenoproteins functionality and beneficial health effects. Primary emphasis is given to the interpretation of biochemical mechanisms rather than epidemiological/observational data. In this context, the review includes the following sections: (1) brief introduction; (2) general nutritional aspects of selenium; (3) global view of selenium metabolic routes; (4) detailed characterization of all human selenoproteins; (5) detailed discussion of the relation between selenoproteins and a variety of human diseases
The influence of negative selection on stature in population - an ecological approach
This work was based on material of military anthropological survey of Poland, which was carried out in
the years 1921-1923 under the leadership of J. Mydlarski. Subject of investigation were data concerning
2569 soldiers born in the years 1899-1901 in Poznań province and the southern part of Pomeranian
province. The purpose of this work was to evaluate the dependence between the environmental conditions
and the mean body height in the population. The results are analysed in the light of the hypothesis about a
selective character of the environmental influence on the population. In agreement with the accepted
assumption, the mean body height in the population is influenced in a contrasting way by two partially
different environmental factors: ’living conditions’ understood as the level of satisfying the basic life needs
of the individual, and ’selective pressure’ being the sum of life dangers. These factors act on the individuals
in a differentiated way depending on the genetic predispositions conditioning their adaptation ability,
resistance and general health. The selective pressure through negative selection (differential mortality)
eliminating from the population individuals who in the given living conditions develop and realize their
growth potential in the poorest way limits the negative influence of living conditions on the mean body
height in the population. This selection can have both a directional and stabilizing character. The mean
body height of mature individuals in the population depends on the living conditions in which their
development took place and on the selection degree by differential mortality.
For the evaluation of the living and environmental conditions data were utilized concerning the number
of children born, living and deceased in the families from which the investigated subjects originated. On this
basis the environmental conditions were evaluated both in families and in the socio-professional groups
distinguished on the basis of the father’s profession and the birth place ("village", "town"). In case of
families, the evaluation was based on the assumption that the number of children in the family is a
burdening factor, and the morality is in a great degree the effect of worse living and environmental
conditions. Better environmental conditions in socio-professional groups are testified primarily by a lower
percentage of deceased children in the families from which the investigated subjects belonging to the given
group originate, as well as by a greater number of children. The departing point of the hypothesis accepted
at the outset was the fact that in the material no definite dependence was found between the evaluated
living and environmental conditions and the mean body height. The analysis of families has shown that on
the average the tallest were the subjects originating from families which due to the number of living children
in the family and the percentage of the deceased ones could provide the average living and environmental
conditions (Tables 8 and 11). Worse environmental conditions, in case of socio-professional groups, caused
by mortality and fecundity in the families from which the subjects belonging to the definite groups
originated were not always connected with smaller body heights (Tables 9 and 10)
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