Revisiting specific force loss in human permeabilized single skeletal muscle fibers obtained from older individuals

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Standard

Revisiting specific force loss in human permeabilized single skeletal muscle fibers obtained from older individuals. / Kalakoutis, Michaeljohn; Pollock, Ross D.; Lazarus, Norman R.; Atkinson, R. Andrew; George, Marc; Berber, Onur; Woledge, Roger C.; Ochala, Julien; Harridge, Stephen D.R.

I: American journal of physiology. Cell physiology, Bind 325, Nr. 1, 2023, s. C172-C185.

Publikation: Bidrag til tidsskriftTidsskriftartikelForskningfagfællebedømt

Harvard

Kalakoutis, M, Pollock, RD, Lazarus, NR, Atkinson, RA, George, M, Berber, O, Woledge, RC, Ochala, J & Harridge, SDR 2023, 'Revisiting specific force loss in human permeabilized single skeletal muscle fibers obtained from older individuals', American journal of physiology. Cell physiology, bind 325, nr. 1, s. C172-C185. https://doi.org/10.1152/ajpcell.00525.2022

APA

Kalakoutis, M., Pollock, R. D., Lazarus, N. R., Atkinson, R. A., George, M., Berber, O., Woledge, R. C., Ochala, J., & Harridge, S. D. R. (2023). Revisiting specific force loss in human permeabilized single skeletal muscle fibers obtained from older individuals. American journal of physiology. Cell physiology, 325(1), C172-C185. https://doi.org/10.1152/ajpcell.00525.2022

Vancouver

Kalakoutis M, Pollock RD, Lazarus NR, Atkinson RA, George M, Berber O o.a. Revisiting specific force loss in human permeabilized single skeletal muscle fibers obtained from older individuals. American journal of physiology. Cell physiology. 2023;325(1):C172-C185. https://doi.org/10.1152/ajpcell.00525.2022

Author

Kalakoutis, Michaeljohn ; Pollock, Ross D. ; Lazarus, Norman R. ; Atkinson, R. Andrew ; George, Marc ; Berber, Onur ; Woledge, Roger C. ; Ochala, Julien ; Harridge, Stephen D.R. / Revisiting specific force loss in human permeabilized single skeletal muscle fibers obtained from older individuals. I: American journal of physiology. Cell physiology. 2023 ; Bind 325, Nr. 1. s. C172-C185.

Bibtex

@article{5fdd405cf3b64dc294bec868c61242ce,
title = "Revisiting specific force loss in human permeabilized single skeletal muscle fibers obtained from older individuals",
abstract = "Specific force (SF) has been shown to be reduced in some but not all studies of human aging using chemically skinned single muscle fibers. This may be due, in part, not only to the health status/physical activity levels of different older cohorts, but also from methodological differences in studying skinned fibers. The aim of the present study was to compare SF in fibers from older hip fracture patients (HFP), healthy master cyclists (MC), and healthy nontrained young adults (YA) using two different activating solutions. Quadriceps muscle samples and 316 fibers were obtained from HFPs (74.6 ± 4 years, n = 5), MCs (74.8 ± 1, n = 5), and YA (25.5 ± 2, n = 6). Fibers were activated (pCa 4.5, 15°C) in solutions containing either 60 mM N-tris(hydroxymethyl)methyl-2-aminoethanesulfonic acid pH buffer (TES) or 20 mM imidazole. SF was determined by normalizing force to fiber cross-sectional area (CSA) assuming either an elliptical or circular shape and to fiber myosin heavy chain content. Activation in TES resulted in significantly higher MHC-I SF in all groups and YA MHC-IIA fibers, irrespective of normalization method. Although there were no differences in SF between the participant groups, the ratio of SF between the TES and imidazole solutions was lower in HFPs compared with YAs (MHC-I P < 0.05; MHC-IIA P = 0.055). Activating solution composition, as opposed to donor characteristics, had a more notable effect on single fiber SF. However, this two-solution approach revealed an age-related difference in sensitivity in HFPs, which was not shown in MCs. This suggests further novel approaches may be required to probe age/activity-related differences in muscle contractile quality.NEW & NOTEWORTHY Whether specific force (SF) decreases with advancing age in human single skeletal muscle fibers is uncertain. Equivocal published findings may be due to the different physical activity levels of the elderly cohorts studied and/or different chemical solutions used to measure force. We compared single fiber SF between young adults, elderly cyclists, and hip fracture patients (HFP) using two solutions. The solution used significantly affected force and revealed a difference in sensitivity of HFP muscle fibers.",
keywords = "aging, muscle contraction, myosin heavy chain, single muscle fiber, specific force",
author = "Michaeljohn Kalakoutis and Pollock, {Ross D.} and Lazarus, {Norman R.} and Atkinson, {R. Andrew} and Marc George and Onur Berber and Woledge, {Roger C.} and Julien Ochala and Harridge, {Stephen D.R.}",
year = "2023",
doi = "10.1152/ajpcell.00525.2022",
language = "English",
volume = "325",
pages = "C172--C185",
journal = "American Journal of Physiology: Cell Physiology",
issn = "0363-6143",
publisher = "American Physiological Society",
number = "1",

}

RIS

TY - JOUR

T1 - Revisiting specific force loss in human permeabilized single skeletal muscle fibers obtained from older individuals

AU - Kalakoutis, Michaeljohn

AU - Pollock, Ross D.

AU - Lazarus, Norman R.

AU - Atkinson, R. Andrew

AU - George, Marc

AU - Berber, Onur

AU - Woledge, Roger C.

AU - Ochala, Julien

AU - Harridge, Stephen D.R.

PY - 2023

Y1 - 2023

N2 - Specific force (SF) has been shown to be reduced in some but not all studies of human aging using chemically skinned single muscle fibers. This may be due, in part, not only to the health status/physical activity levels of different older cohorts, but also from methodological differences in studying skinned fibers. The aim of the present study was to compare SF in fibers from older hip fracture patients (HFP), healthy master cyclists (MC), and healthy nontrained young adults (YA) using two different activating solutions. Quadriceps muscle samples and 316 fibers were obtained from HFPs (74.6 ± 4 years, n = 5), MCs (74.8 ± 1, n = 5), and YA (25.5 ± 2, n = 6). Fibers were activated (pCa 4.5, 15°C) in solutions containing either 60 mM N-tris(hydroxymethyl)methyl-2-aminoethanesulfonic acid pH buffer (TES) or 20 mM imidazole. SF was determined by normalizing force to fiber cross-sectional area (CSA) assuming either an elliptical or circular shape and to fiber myosin heavy chain content. Activation in TES resulted in significantly higher MHC-I SF in all groups and YA MHC-IIA fibers, irrespective of normalization method. Although there were no differences in SF between the participant groups, the ratio of SF between the TES and imidazole solutions was lower in HFPs compared with YAs (MHC-I P < 0.05; MHC-IIA P = 0.055). Activating solution composition, as opposed to donor characteristics, had a more notable effect on single fiber SF. However, this two-solution approach revealed an age-related difference in sensitivity in HFPs, which was not shown in MCs. This suggests further novel approaches may be required to probe age/activity-related differences in muscle contractile quality.NEW & NOTEWORTHY Whether specific force (SF) decreases with advancing age in human single skeletal muscle fibers is uncertain. Equivocal published findings may be due to the different physical activity levels of the elderly cohorts studied and/or different chemical solutions used to measure force. We compared single fiber SF between young adults, elderly cyclists, and hip fracture patients (HFP) using two solutions. The solution used significantly affected force and revealed a difference in sensitivity of HFP muscle fibers.

AB - Specific force (SF) has been shown to be reduced in some but not all studies of human aging using chemically skinned single muscle fibers. This may be due, in part, not only to the health status/physical activity levels of different older cohorts, but also from methodological differences in studying skinned fibers. The aim of the present study was to compare SF in fibers from older hip fracture patients (HFP), healthy master cyclists (MC), and healthy nontrained young adults (YA) using two different activating solutions. Quadriceps muscle samples and 316 fibers were obtained from HFPs (74.6 ± 4 years, n = 5), MCs (74.8 ± 1, n = 5), and YA (25.5 ± 2, n = 6). Fibers were activated (pCa 4.5, 15°C) in solutions containing either 60 mM N-tris(hydroxymethyl)methyl-2-aminoethanesulfonic acid pH buffer (TES) or 20 mM imidazole. SF was determined by normalizing force to fiber cross-sectional area (CSA) assuming either an elliptical or circular shape and to fiber myosin heavy chain content. Activation in TES resulted in significantly higher MHC-I SF in all groups and YA MHC-IIA fibers, irrespective of normalization method. Although there were no differences in SF between the participant groups, the ratio of SF between the TES and imidazole solutions was lower in HFPs compared with YAs (MHC-I P < 0.05; MHC-IIA P = 0.055). Activating solution composition, as opposed to donor characteristics, had a more notable effect on single fiber SF. However, this two-solution approach revealed an age-related difference in sensitivity in HFPs, which was not shown in MCs. This suggests further novel approaches may be required to probe age/activity-related differences in muscle contractile quality.NEW & NOTEWORTHY Whether specific force (SF) decreases with advancing age in human single skeletal muscle fibers is uncertain. Equivocal published findings may be due to the different physical activity levels of the elderly cohorts studied and/or different chemical solutions used to measure force. We compared single fiber SF between young adults, elderly cyclists, and hip fracture patients (HFP) using two solutions. The solution used significantly affected force and revealed a difference in sensitivity of HFP muscle fibers.

KW - aging

KW - muscle contraction

KW - myosin heavy chain

KW - single muscle fiber

KW - specific force

UR - http://www.scopus.com/inward/record.url?scp=85164211740&partnerID=8YFLogxK

U2 - 10.1152/ajpcell.00525.2022

DO - 10.1152/ajpcell.00525.2022

M3 - Journal article

C2 - 37212546

AN - SCOPUS:85164211740

VL - 325

SP - C172-C185

JO - American Journal of Physiology: Cell Physiology

JF - American Journal of Physiology: Cell Physiology

SN - 0363-6143

IS - 1

ER -

ID: 360070811