医学检查与临床诊断

生物电阻抗法测量18 ~ 42岁成人四肢骨骼肌质量的准确性评价

  • 郑伊迎 ,
  • 程红 ,
  • 邝玉娴 ,
  • 马振新 ,
  • 陈伟业 ,
  • 卢可缘 ,
  • 米杰 ,
  • 刘丽
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  • 1.广东药科大学公共卫生学院流行病与卫生统计学系 (广州 510310 )
    2.首都儿科研究所流行病学研究室 (北京 100020 )
    3.国家儿童医学中心、首都医科大学附属北京儿童医院儿童慢病管理中心 (北京 100045 )

收稿日期: 2023-09-11

  网络出版日期: 2024-03-08

基金资助

国家自然科学基金项目(81874271)

Accuracy evaluation of bioelectrical impedance analysis in assessment of appendicular skeletal muscle mass in adults aged 18-42 years

  • Yiying ZHENG ,
  • Hong CHENG ,
  • Yuxian KUANG ,
  • Zhenxin MA ,
  • Weiye CHEN ,
  • Keyuan LU ,
  • Jie MI ,
  • Li. LIU
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  • *.Department of Epidemiology and Biostatistics,School of Public Health,Guangdong Pharmaceutical University,Guangzhou 510310,China

Received date: 2023-09-11

  Online published: 2024-03-08

摘要

目的 评价生物电阻抗法(bioelectrical impedance analysis, BIA)测量成人四肢骨骼肌质量(appendicular skeletal muscle mass, ASM)的准确性。 方法 采用方便抽样法,于2021年4月至2022年9月在广州全市招募836名18 ~ 42岁成人,采用BIA与双能X线吸收法(dual-energy X-ray absorptiometry, DXA)同步检测ASM。以DXA为标准方法,通过组内相关系数以及在对数变换数据中进行Bland-Altman分析判断BIA与DXA所测值的一致性,以此评价BIA测量ASM的准确性。绘制受试者工作特征曲线,评价BIA识别低肌肉质量的诊断价值。 结果 最终纳入774名研究对象。男、女性中两法所测ASM组内相关系数分别为0.774和0.667。男、女性中BIA与DXA所测ASM比值均值(一致性限)分别为0.94(0.80 ~ 1.10)和0.91(0.78 ~ 1.05)。BIA识别男、女性低肌肉质量的曲线下面积分别0.91和0.94。BIA判断男、女性低肌肉质量的Z值最佳界值分别为-0.57和-0.66,男性中BIA识别低肌肉质量的灵敏度、特异度分别为82.5%、86.0%,女性中分别为86.8%、93.8%。 结论 BIA与DXA所测成人四肢骨骼肌质量的一致性尚可,且BIA识别18 ~ 42岁成人低肌肉质量的诊断价值较好。

本文引用格式

郑伊迎 , 程红 , 邝玉娴 , 马振新 , 陈伟业 , 卢可缘 , 米杰 , 刘丽 . 生物电阻抗法测量18 ~ 42岁成人四肢骨骼肌质量的准确性评价[J]. 实用医学杂志, 2024 , 40(4) : 549 -553 . DOI: 10.3969/j.issn.1006-5725.2024.04.019

Abstract

Objective To evaluate the accuracy of bioelectrical impedance analysis (BIA) in measurement of appendicular skeletal muscle mass (ASM) of adults. Methods A total of 836 adults aged 18-42 years were recruited in Guangzhou using a convenient sampling method from April 2021 to September 2022. ASM was measured using BIA and Dual?energy X?ray absorptiometry (DXA). Using DXA as the standard method, the consistency between the BIA and DXA measurements was evaluated by intra?class correlation coefficients (ICCs) and Bland?Altman analysis in logarithmically transformed data, in order to evaluate the accuracy of BIA in ASM measurement. Receiver operating characteristic curve was plotted to evaluate the diagnostic value of BIA for screening low muscle mass. Results A total of 774 individuals were included for analysis finally. ICCs for ASM measured by BIA and DXA were 0.774 and 0.667 in males and females, respectively. Mean ratios (limits of Agreement) of ASM were 0.94 (0.80-1.10) and 0.91 (0.78-1.05) in males and females, respectively. Area under curve of BIA for screening low muscle mass were 0.91 and 0.94 in males and females, respectively. The optimal cut?off values of Z?score by BIA for males and females were -0.57 and -0.66, respectively. Sensitivity and specificity for males were 82.5% and 86.0%, while being 86.8% and 93.8%, for females. Conclusion BIA shows a moderate consistency with DXA for measuring ASM in adults. Furthermore, BIA yields a good diagnostic value in identifying low muscle mass in adults aged 18-42 years.

参考文献

1 GIUDICE J, TAYLOR J M. Muscle as a paracrine and endocrine organ[J]. Curr Opin Pharmacol, 2017, 34: 49-55. doi:10.1016/j.coph.2017.05.005
2 BROTTO M, BONEWALD L. Bone and Muscle: Interactions beyond Mechanical[J]. Bone, 2015, 80: 109-114. doi:10.1016/j.bone.2015.02.010
3 SILVA A M, SHEN W, HEO M, et al. Ethnicity-related skeletal muscle differences across the lifespan[J]. Am J Hum Biol, 2010, 22(1): 76-82. doi:10.1002/ajhb.20956
4 KIM J Y, OH S, PARK H Y, et al. Comparisons of different indices of low muscle mass in relationship with cardiometabolic disorder[J]. Sci Rep, 2019, 9(1): 609. doi:10.1038/s41598-018-37347-3
5 HEYMSFIELD S B, GONZALEZ M C, LU J, et al. Skeletal muscle mass and quality: evolution of modern measurement concepts in the context of sarcopenia[J]. Proc Nutr Soc, 2015, 74(4): 355-366. doi:10.1017/s0029665115000129
6 邓嘉杰, 阳琰, 蔡玉兰, 等. 不同程度肌少症老年男性骨密度与血清25羟维生素D、鸢尾素的关系[J]. 实用医学杂志, 2023, 39(3): 321-325. doi:10.3969/j.issn.1006-5725.2023.03.010
7 MARRA M, SAMMARCO R, DE LORENZO A, et al. Assessment of Body Composition in Health and Disease Using Bioelectrical Impedance Analysis (BIA) and Dual Energy X-Ray Absorptiometry (DXA): A Critical Overview[J]. Contrast Media Mol Imaging, 2019, 2019: 3548284. doi:10.1155/2019/3548284
8 崔华, 王朝晖, 吴剑卿, 等. 老年人肌少症防控干预中国专家共识(2023)[J]. 中华老年医学杂志, 2023, 42(2): 144-153. doi:10.3760/cma.j.issn.0254-9026.2023.02.002
9 刘丽, 陆爽, 敖丽萍, 等. 生物电阻抗法和双能X线吸收法测量7~17岁儿童青少年体成分的一致性评价[J]. 中华流行病学杂志, 2021, 42(3): 475-481. doi:10.3760/cma.j.cn112338-20200812-01062
10 ZHENGHE W, YANHUI D, YIDE Y, et al. Comparison whole-body muscle mass assessed by dual-energy X-ray absorptiometry and multi-frequency bioelectrical impedance in overweight and obese adults[J]. Chin J Prev Med, 2017, 51(3): 215-219.
11 刘婕妤, 李晓, 李艳辉, 等. 体成分与高血压相关性及生物电阻抗法与双能X射线吸收法一致性分析[J]. 中国公共卫生, 2023, 39(2): 225-232. doi:10.11847/zgggws1138216
12 KNOWLES R, CARTER J, JEBB S A, et al. Associations of Skeletal Muscle Mass and Fat Mass With Incident Cardiovascular Disease and All-Cause Mortality: A Prospective Cohort Study of UK Biobank Participants[J]. J Am Heart Assoc, 2021, 10(9): e019337. doi:10.1161/jaha.120.019337
13 BLAIN H, JAUSSENT A, THOMAS E, et al. Appendicular skeletal muscle mass is the strongest independent factor associated with femoral neck bone mineral density in adult and older men[J]. Exp Gerontol, 2010, 45(9): 679-684. doi:10.1016/j.exger.2010.04.006
14 中华人民共和国国家卫生和计划生育委员会. 成人体重判定: [S]. 北京: 中国标准出版社, 2013.
15 KOO T K, LI M Y. A Guideline of Selecting and Reporting Intraclass Correlation Coefficients for Reliability Research[J]. J Chiropr Med, 2016, 15(2): 155-163. doi:10.1016/j.jcm.2016.02.012
16 BLAND J M, ALTMAN D G. Measuring agreement in method comparison studies[J]. Stat Methods Med Res, 1999, 8(2): 135-160. doi:10.1191/096228099673819272
17 ORSSO C E, SILVA M I B, GONZALEZ M C, et al. Assessment of body composition in pediatric overweight and obesity: A systematic review of the reliability and validity of common techniques[J]. Obes Rev, 2020, 21(8): e13041. doi:10.1111/obr.13041
18 JANSSEN I, HEYMSFIELD S B, BAUMGARTNER R N, et al. Estimation of skeletal muscle mass by bioelectrical impedance analysis[J]. J Appl Physiol, 2000, 89(2): 465-471. doi:10.1152/jappl.2000.89.2.465
19 LEMOS T, GALLAGHER D. Current body composition measurement techniques[J]. Curr Opin Endocrinol Diabetes Obes, 2017, 24(5): 310-314. doi:10.1097/med.0000000000000360
20 SERGI G, DE RUI M, STUBBS B, et al. Measurement of lean body mass using bioelectrical impedance analysis: a consideration of the pros and cons[J]. Aging Clin Exp Res, 2017, 29(4): 591-597. doi:10.1007/s40520-016-0622-6
21 OHASHI Y, JOKI N, YAMAZAKI K, et al. Changes in the fluid volume balance between intra- and extracellular water in a sample of Japanese adults aged 15-88 yr old: a cross-sectional study[J]. Am J Physiol Renal Physiol, 2018, 314(4): F614-F622. doi:10.1152/ajprenal.00477.2017
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