Declining muscle hyperplasia in juvenile trout is associated with a significant impairment of the supportive function of the myogenic progenitor niche.
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引用次数: 0
Abstract
Background: Unlike mammals and birds, where new muscle fiber formation (hyperplasia) ceases around birth, large and fast-growing fish such as trout undergo a spectacular post-hatching surge of hyperplasia, followed by a considerably delayed hyperplasia decline. This study investigated the role of muscle stem cells (MuSCs) and their niche in this process by assessing changes in their abundance, myogenic potential and niche functionality.
Methods: Hyperplasia kinetics were investigated by measuring the total number of fibers and their cross-sectional area (CSA) in white muscle across juvenile stages (10 g to 2 kg). Quantification of MuSCs during growth was performed by pax7 in situ hybridization. To assess the supportive capacity of the MuSCs niche, muscle-derived cells (MDCs) extracted from the Tg(mlc2:gfp) trout line were transplanted into muscle of wild-type trout at different juvenile stages. Expression of GFP in transplanted muscle was measured as an indicator of myogenic progenitor differentiation.
Results: Histological analysis revealed a significant decrease in hyperplasia and MuSCs density (defined here as pax7+ cells) between 10 and 500 g trout. Transplantation experiments using MDCs from Tg(mlc2:gfp) trout (10 g donors into 10 g to 2 kg recipients) showed alterations in niche functionality as the trout grew from 10 to 500 g. The transplantation of Tg(mlc2:gfp) MDCs from early to late juvenile donor trout (100 g to 2 kg) into 10 g WT recipients showed a decrease in the GFP signal as the donor weight increased. Detailed analyses of GFP+ fibers produced after transplantation showed an enrichment of small-CSA GFP+ fibers in 10 g but not 100 g trout recipient muscles, indicating a rapid impairment in niche ability to support hyperplasia. In addition, by comparing trout of the same age but different weights, we demonstrated that weight gain, rather than chronological aging, is a key factor driving this decline.
Conclusions: Overall, these results indicate that the decline in muscle hyperplasia in trout is associated with an early impairment of the MuSC niche, along with a reduced MuSC density. Also, weight gain was found to play a more critical role than aging. These original findings provide new insights into the mechanisms underlying muscle growth as hyperplasia declines in vertebrates.
期刊介绍:
The only open access journal in its field, Skeletal Muscle publishes novel, cutting-edge research and technological advancements that investigate the molecular mechanisms underlying the biology of skeletal muscle. Reflecting the breadth of research in this area, the journal welcomes manuscripts about the development, metabolism, the regulation of mass and function, aging, degeneration, dystrophy and regeneration of skeletal muscle, with an emphasis on understanding adult skeletal muscle, its maintenance, and its interactions with non-muscle cell types and regulatory modulators.
Main areas of interest include:
-differentiation of skeletal muscle-
atrophy and hypertrophy of skeletal muscle-
aging of skeletal muscle-
regeneration and degeneration of skeletal muscle-
biology of satellite and satellite-like cells-
dystrophic degeneration of skeletal muscle-
energy and glucose homeostasis in skeletal muscle-
non-dystrophic genetic diseases of skeletal muscle, such as Spinal Muscular Atrophy and myopathies-
maintenance of neuromuscular junctions-
roles of ryanodine receptors and calcium signaling in skeletal muscle-
roles of nuclear receptors in skeletal muscle-
roles of GPCRs and GPCR signaling in skeletal muscle-
other relevant aspects of skeletal muscle biology.
In addition, articles on translational clinical studies that address molecular and cellular mechanisms of skeletal muscle will be published. Case reports are also encouraged for submission.
Skeletal Muscle reflects the breadth of research on skeletal muscle and bridges gaps between diverse areas of science for example cardiac cell biology and neurobiology, which share common features with respect to cell differentiation, excitatory membranes, cell-cell communication, and maintenance. Suitable articles are model and mechanism-driven, and apply statistical principles where appropriate; purely descriptive studies are of lesser interest.