In Vivo Visualization of Tissue Damage Induced by Percutaneous Muscle Biopsy via Novel High-Resolution MR Imaging.


Journal

Medicine and science in sports and exercise
ISSN: 1530-0315
Titre abrégé: Med Sci Sports Exerc
Pays: United States
ID NLM: 8005433

Informations de publication

Date de publication:
01 07 2021
Historique:
pubmed: 16 1 2021
medline: 9 9 2021
entrez: 15 1 2021
Statut: ppublish

Résumé

Percutaneous muscle biopsy is the gold standard for tissue assessment in clinical practice and scientific studies. The aim of this study was to assess and quantify the ensuing tissue damage by in vivo magnetic resonance imaging (MRI). In this prospective study, we enrolled 22 healthy participants who underwent MRI of the thigh musculature about 1 wk after a percutaneous muscle biopsy of the vastus lateralis muscle. A total of 17 participants also volunteered for a second MR examination 2 wk after biopsy. Volumes of susceptibility-weighted imaging (SWI) lesions and muscle edema were assessed by SWI and T2-weighted MRI, respectively, after manual segmentation by two independent readers. For quantitative in vivo hematoma volume assessment, we additionally determined signal changes induced by experimental hematoma in an ex vivo model. Mean overall volume of SWI lesions 1 wk after biopsy was 26.5 ± 21.7 μL, accompanied by a mean perifocal edema volume of 790.1 ± 591.4 μL. In participants who underwent two examinations, mean volume of SWI lesions slightly decreased from 29.8 ± 23.6 to 23.9 ± 16.8 μL within 1 wk (P = 0.13). Muscle edema volume decreased from 820.2 ± 632.4 to 359.6 ± 207.3 μL at the same time (P = 0.006). By calibration with the ex vivo findings, signal alterations on SWI corresponded to a blood volume of approximately 10-50 μL. Intramuscular hematoma and accompanying muscle edema after percutaneous biopsy are small and decrease rapidly within the first 2 wk. These in vivo findings underline the limited invasiveness of the procedure.

Identifiants

pubmed: 33449606
doi: 10.1249/MSS.0000000000002601
pii: 00005768-202107000-00006
doi:

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

1367-1374

Informations de copyright

Copyright © 2021 by the American College of Sports Medicine.

Références

Malm C, Nyberg P, Engstrom M, et al. Immunological changes in human skeletal muscle and blood after eccentric exercise and multiple biopsies. J Physiol . 2000;529 Pt 1(Pt 1):243–62.
Friedmann-Bette B, Profit F, Gwechenberger T, et al. Strength training effects on muscular regeneration after ACL reconstruction. Med Sci Sports Exerc . 2018;50(6):1152–61.
Mackey AL, Karlsen A, Couppé C, et al. Differential satellite cell density of type I and II fibres with lifelong endurance running in old men. Acta Physiol (Oxf) . 2014;210(3):612–27.
Joanisse S, Snijders T, Nederveen JP, Parise G. The impact of aerobic exercise on the muscle stem cell response. Exerc Sport Sci Rev . 2018;46(3):180–7.
Charriere M, Duchenne G. Emporte piece histologique (engl.: name of a novel biopsy instrument, also known as “Duchenne’s trocar”). Bull Acad Med . 1865;30:1050–1.
Bergstrom J. Percutaneous needle biopsy of skeletal muscle in physiological and clinical research. Scand J Clin Lab Invest . 1975;35(7):609–16.
Edwards RH, Round JM, Jones DA. Needle biopsy of skeletal muscle: a review of 10 years experience. Muscle Nerve . 1983;6(9):676–83.
Lacomis D. The use of percutaneous needle muscle biopsy in the diagnosis of myopathy. Curr Rheumatol Rep . 2000;2(3):225–9.
Tarnopolsky MA, Pearce E, Smith K, Lach B. Suction-modified Bergström muscle biopsy technique: experience with 13,500 procedures. Muscle Nerve . 2011;43(5):717–25.
Derry KL, Nicolle MN, Keith-Rokosh JA, Hammond RR. Percutaneous muscle biopsies: review of 900 consecutive cases at London Health Sciences Centre. Can J Neurol Sci . 2009;36(2):201–6.
Highstead RG, Tipton KD, Creson DL, Wolfe RR, Ferrando AA. Incidence of associated events during the performance of invasive procedures in healthy human volunteers. J Appl Physiol (1985) . 2005;98(4):1202–6.
Ryan JM. Myositis ossificans: a serious complication of a minor injury. CJEM . 1999;1(3):198.
McCarthy EF, Sundaram M. Heterotopic ossification: a review. Skeletal Radiol . 2005;34(10):609–19.
Friedmann-Bette B, Schwartz FR, Eckhardt H, Billeter R, Bonaterra G, Kinscherf R. Similar changes of gene expression in human skeletal muscle after resistance exercise and multiple fine needle biopsies. J Appl Physiol (1985) . 2012;112(2):289–95.
Yoshino J, Almeda-Valdes P, Moseley AC, Mittendorfer B, Klein S. Percutaneous muscle biopsy-induced tissue injury causes local endoplasmic reticulum stress. Physiol Rep . 2018;6(8):e13679.
Mori N, Miki Y, Kikuta K, et al. Microbleeds in moyamoya disease: susceptibility-weighted imaging versus T2*-weighted imaging at 3 Tesla. Invest Radiol . 2008;43(8):574–9.
Reichenbach JR, Venkatesan R, Schillinger DJ, Kido DK, Haacke EM. Small vessels in the human brain: MR venography with deoxyhemoglobin as an intrinsic contrast agent. Radiology . 1997;204(1):272–7.
Kang DW, Jeong HG, Kim DY, Yang W, Lee SH. Prediction of stroke subtype and recanalization using susceptibility vessel sign on susceptibility-weighted magnetic resonance imaging. Stroke . 2017;48(6):1554–9.
Hasiloglu ZI, Albayram S, Selcuk H, et al. Cerebral microhemorrhages detected by susceptibility-weighted imaging in amateur boxers. AJNR Am J Neuroradiol . 2011;32(1):99–102.
Haller S, Vernooij MW, Kuijer JPA, Larsson EM, Jager HR, Barkhof F. Cerebral microbleeds: imaging and clinical significance. Radiology . 2018;287(1):11–28.
Kim TH, Yun TJ, Park CK, et al. Combined use of susceptibility weighted magnetic resonance imaging sequences and dynamic susceptibility contrast perfusion weighted imaging to improve the accuracy of the differential diagnosis of recurrence and radionecrosis in high-grade glioma patients. Oncotarget . 2017;8(12):20340–53.
Helmer KG, Pasternak O, Fredman E, et al. Hockey Concussion Education Project, part 1. Susceptibility-weighted imaging study in male and female ice hockey players over a single season. J Neurosurg . 2014;120(4):864–72.
Turner RC, Lucke-Wold BP, Robson MJ, Omalu BI, Petraglia AL, Bailes JE. Repetitive traumatic brain injury and development of chronic traumatic encephalopathy: a potential role for biomarkers in diagnosis, prognosis, and treatment? Front Neurol . 2012;3:186.
Norenberg D, Ebersberger HU, Walter T, et al. Diagnosis of calcific tendonitis of the rotator cuff by using susceptibility-weighted MR imaging. Radiology . 2016;278(2):475–84.
Haacke EM, Mittal S, Wu Z, Neelavalli J, Cheng YC. Susceptibility-weighted imaging: technical aspects and clinical applications, part 1. AJNR Am J Neuroradiol . 2009;30(1):19–30.
Shrout PE, Fleiss JL. Intraclass correlations: uses in assessing rater reliability. Psychol Bull . 1979;86(2):420–8.
Koo TK, Li MY. A guideline of selecting and reporting Intraclass correlation coefficients for reliability research. J Chiropr Med . 2016;15(2):155–63.
Sales RM, Cavalcante MC, Cohen M, Ejnisman B, Andreoli CV, Pochini AC. Treatment of acute thigh muscle injury with or without hematoma puncture in athletes. Rev Bras Ortop (Sao Paulo) . 2019;54(1):6–12.
Svensson K, Alricsson M, Karnebäck G, Magounakis T, Werner S. Muscle injuries of the lower extremity: a comparison between young and old male elite soccer players. Knee Surg Sports Traumatol Arthrosc . 2016;24(7):2293–9.
Van Thienen R, D’Hulst G, Deldicque L, Hespel P. Biochemical artifacts in experiments involving repeated biopsies in the same muscle. Physiol Rep . 2014;2(5):e00286.
Sun H, Klahr AC, Kate M, et al. Quantitative susceptibility mapping for following intracranial hemorrhage. Radiology . 2018;288(3):830–9.
Poels MM, Ikram MA, van der Lugt A, et al. Incidence of cerebral microbleeds in the general population: the Rotterdam Scan Study. Stroke . 2011;42(3):656–61.
Liu W, Soderlund K, Senseney JS, et al. Imaging cerebral microhemorrhages in military service members with chronic traumatic brain injury. Radiology . 2016;278(2):536–45.
Shanely RA, Zwetsloot KA, Triplett NT, Meaney MP, Farris GE, Nieman DC. Human skeletal muscle biopsy procedures using the modified Bergstrom technique. J Vis Exp . 2014;91:51812.
Bonafiglia JT, Islam H, Preobrazenski N, et al. A comparison of pain responses, hemodynamic reactivity and fibre type composition between Bergström and microbiopsy skeletal muscle biopsies. Curr Res Physiol . 2020;3:1–10.
Hayot M, Michaud A, Koechlin C, et al. Skeletal muscle microbiopsy: a validation study of a minimally invasive technique. Eur Respir J . 2005;25(3):431–40.
Smith C, Kruger MJ, Smith RM, Myburgh KH. The inflammatory response to skeletal muscle injury: illuminating complexities. Sports Med . 2008;38(11):947–69.
Chang S, Zhang J, Liu T, et al. Quantitative susceptibility mapping of intracerebral hemorrhages at various stages. J Magn Reson Imaging . 2016;44(2):420–5.
Chavhan GB, Babyn PS, Thomas B, Shroff MM, Haacke EM. Principles, techniques, and applications of T2*-based MR imaging and its special applications. Radiographics . 2009;29(5):1433–49.

Auteurs

Fabian Preisner (F)

Department of Neuroradiology, Heidelberg University Hospital, Heidelberg, GERMANY.

Birgit Friedmann-Bette (B)

Department of Sports Medicine (Internal Medicine VII), Medical Clinic, Heidelberg University Hospital, Heidelberg, GERMANY.

Michaela Wehrstein (M)

Department of Sports Medicine (Internal Medicine VII), Medical Clinic, Heidelberg University Hospital, Heidelberg, GERMANY.

Dominik Franz-Josef Vollherbst (DF)

Department of Neuroradiology, Heidelberg University Hospital, Heidelberg, GERMANY.

Sabine Heiland (S)

Department of Neuroradiology, Heidelberg University Hospital, Heidelberg, GERMANY.

Martin Bendszus (M)

Department of Neuroradiology, Heidelberg University Hospital, Heidelberg, GERMANY.

Tim Hilgenfeld (T)

Department of Neuroradiology, Heidelberg University Hospital, Heidelberg, GERMANY.

Articles similaires

[Redispensing of expensive oral anticancer medicines: a practical application].

Lisanne N van Merendonk, Kübra Akgöl, Bastiaan Nuijen
1.00
Humans Antineoplastic Agents Administration, Oral Drug Costs Counterfeit Drugs

Smoking Cessation and Incident Cardiovascular Disease.

Jun Hwan Cho, Seung Yong Shin, Hoseob Kim et al.
1.00
Humans Male Smoking Cessation Cardiovascular Diseases Female
Humans United States Aged Cross-Sectional Studies Medicare Part C
1.00
Humans Yoga Low Back Pain Female Male

Classifications MeSH