Impact of capillary and sarcolemmal proximity on mitochondrial structure and energetic function in skeletal muscle

被引:3
|
作者
Parry, Hailey A. [1 ]
Willingham, T. Bradley [1 ,2 ]
Giordano, Kevin A. [3 ]
Kim, Yuho [1 ,4 ]
Qazi, Shureed [1 ]
Knutson, Jay R. [1 ]
Combs, Christian A. [1 ]
Glancy, Brian [1 ,5 ]
机构
[1] NHLBI, NIH, 10 Ctr Dr BLDG 10, Rm B1D400, Bethesda, MD 20817 USA
[2] Shephard Ctr Virginia C Crawford Res Inst, Atlanta, GA USA
[3] Holy Cross Orthoped Inst, Ft Lauderdale, FL USA
[4] Univ Massachusetts, Lowell, MA USA
[5] Natl Inst Arthrit & Musculoskeletal & Skin Dis, NIH, Bethesda, MD USA
来源
JOURNAL OF PHYSIOLOGY-LONDON | 2024年 / 602卷 / 09期
关键词
energy function; mitochondria; skeletal muscle; IN-VIVO; INTERMYOFIBRILLAR MITOCHONDRIA; MEMBRANE INTERACTIONS; RETICULUM; MICROSCOPY; EXERCISE; PHOSPHORYLATION; METABOLISM; TOPOLOGY; ELECTRON;
D O I
10.1113/JP286246
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Mitochondria within skeletal muscle cells are located either between the muscle contractile apparatus (interfibrillar mitochondria, IFM) or beneath the cell membrane (subsarcolemmal mitochondria, SSM), with several structural and functional differences reported between IFM and SSM. However, recent 3D imaging studies demonstrate that mitochondria are particularly concentrated in the proximity of capillaries embedded in sarcolemmal grooves rather than in proximity to the sarcolemma itself (paravascular mitochondria, PVM). To evaluate the impact of capillary vs. sarcolemmal proximity, we compared the structure and function of skeletal muscle mitochondria located either lateral to embedded capillaries (PVM), adjacent to the sarcolemma but not in PVM pools (SSM) or interspersed between sarcomeres (IFM). Mitochondrial morphology and interactions were assessed by 3D electron microscopy coupled with machine learning segmentation, whereas mitochondrial energy conversion was assessed by two-photon microscopy of mitochondrial membrane potential, content, calcium, NADH redox and flux in live, intact cells. Structurally, although PVM and SSM were similarly larger than IFM, PVM were larger, rounder and had more physical connections to neighbouring mitochondria compared to both IFM and SSM. Functionally, PVM had similar or greater basal NADH flux compared to SSM and IFM, respectively, despite a more oxidized NADH pool and a greater membrane potential, signifying a greater activation of the electron transport chain in PVM. Together, these data indicate that proximity to capillaries has a greater impact on resting mitochondrial energy conversion and distribution in skeletal muscle than the sarcolemma alone.
引用
收藏
页码:1967 / 1986
页数:20
相关论文
共 50 条
  • [21] ATP Citrate Lyase Improves Mitochondrial Function in Skeletal Muscle
    Das, Suman
    Morvan, Frederic
    Jourde, Benjamin
    Meier, Viktor
    Kahle, Peter
    Brebbia, Pascale
    Toussaint, Gauthier
    Glass, David J.
    Fornaro, Mara
    CELL METABOLISM, 2015, 21 (06) : 868 - 876
  • [22] Skeletal Muscle: A Brief Review of Structure and Function
    Walter R. Frontera
    Julien Ochala
    Calcified Tissue International, 2015, 96 : 183 - 195
  • [23] Parkin: one of the guardians of mitochondrial function and skeletal muscle contractility
    Arini, Gabriel S.
    dos Santos, Ancely F.
    JOURNAL OF PHYSIOLOGY-LONDON, 2018, 596 (21): : 5081 - 5082
  • [24] Data on mitochondrial function in skeletal muscle of old mice in response to different exercise intensity
    Kang, Chounghun
    Lim, Wonchung
    DATA IN BRIEF, 2016, 7 : 1519 - 1523
  • [25] The importance of mitochondrial quality control for maintaining skeletal muscle function across health span
    Sligar, James
    DeBruin, Danielle A.
    Saner, Nicholas J.
    Philp, Ashleigh M.
    Philp, Andrew
    AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY, 2022, 322 (03): : C461 - C467
  • [26] Bed rest and resistive vibration exercise unveil novel links between skeletal muscle mitochondrial function and insulin resistance
    Kenny, Helena C.
    Rudwill, Floriane
    Breen, Laura
    Salanova, Michele
    Blottner, Dieter
    Heise, Tim
    Heer, Martina
    Blanc, Stephane
    O'Gorman, Donal J.
    DIABETOLOGIA, 2017, 60 (08) : 1491 - 1501
  • [27] Capillary facilitation of skeletal muscle function in health and diseases
    Parise, Gianni
    Murrant, Coral L.
    Cocks, Matthew
    Snijders, Tim
    Baum, Oliver
    Plyley, Michael J.
    APPLIED PHYSIOLOGY NUTRITION AND METABOLISM, 2020, 45 (05) : 453 - 462
  • [28] Toward Ameliorating Insulin Resistance: Targeting a Novel PAK1 Signaling Pathway Required for Skeletal Muscle Mitochondrial Function
    Balakrishnan, Rekha
    Garcia, Pablo A.
    Veluthakal, Rajakrishnan
    Huss, Janice M.
    Hoolachan, Joseph M.
    Thurmond, Debbie C.
    ANTIOXIDANTS, 2023, 12 (09)
  • [29] Resistance Exercise Training Alters Mitochondrial Function in Human Skeletal Muscle
    Porter, Craig
    Reidy, Paul T.
    Bhattarai, Nisha
    Sidossis, Labros S.
    Rasmussen, Blake B.
    MEDICINE AND SCIENCE IN SPORTS AND EXERCISE, 2015, 47 (09) : 1922 - 1931
  • [30] Prenatal transportation stress does not impact resting skeletal muscle mitochondrial function or antioxidant activity in Brahman calves
    Wesolowski, Lauren T.
    Guy, Chloey P.
    Long, Charles R.
    Randel, Ronald D.
    Riley, David G.
    Welsh, Thomas H., Jr.
    White-Springer, Sarah H.
    FRONTIERS IN ANIMAL SCIENCE, 2023, 4