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Skeletal muscle adiposity, coronary microvascular dysfunction, and adverse cardiovascular outcomes

Abstract

Background and Aims

Skeletal muscle (SM) fat infiltration, or intermuscular adipose tissue (IMAT), reflects muscle quality and is associated with inflammation, a key determinant in cardiometabolic disease. Coronary flow reserve (CFR), a marker of coronary microvascular dysfunction (CMD), is independently associated with body mass index (BMI), inflammation and risk of heart failure, myocardial infarction, and death. The relationship between SM quality, CMD, and cardiovascular outcomes is not known.

Methods

Consecutive patients (n = 669) undergoing evaluation for coronary artery disease with cardiac stress positron emission tomography demonstrating normal perfusion and preserved left ventricular ejection fraction were followed over a median of 6 years for major adverse cardiovascular events (MACEs), including death and hospitalization for myocardial infarction or heart failure. Coronary flow reserve was calculated as stress/rest myocardial blood flow. Subcutaneous adipose tissue (SAT), SM, and IMAT areas (cm2) were obtained from simultaneous positron emission tomography attenuation correction computed tomography using semi-automated segmentation at the 12th thoracic vertebra level.

Results

Median age was 63 years, 70% were female, and 46% were nonwhite. Nearly half of patients were obese (46%, BMI 30–61 kg/m2), and BMI correlated highly with SAT and IMAT (r = .84 and r = .71, respectively, P < .001) and moderately with SM (r = .52, P < .001). Decreased SM and increased IMAT, but not BMI or SAT, remained independently associated with decreased CFR (adjusted P = .03 and P = .04, respectively). In adjusted analyses, both lower CFR and higher IMAT were associated with increased MACE [hazard ratio 1.78 (95% confidence interval 1.23–2.58) per −1 U CFR and 1.53 (1.30–1.80) per +10 cm2 IMAT, adjusted P = .002 and P < .0001, respectively], while higher SM and SAT were protective [hazard ratio .89 (.81–.97) per +10 cm2 SM and .94 (.91–.98) per +10 cm2 SAT, adjusted P = .01 and .003, respectively]. Every 1% increase in fatty muscle fraction [IMAT/(SM + IMAT)] conferred an independent 2% increased odds of CMD [CFR <2, odds ratio 1.02 (1.01–1.04), adjusted P = .04] and a 7% increased risk of MACE [hazard ratio 1.07 (1.04–1.09), adjusted P < .001]. There was a significant interaction between CFR and IMAT, not BMI, such that patients with both CMD and fatty muscle demonstrated highest MACE risk (adjusted P = .02).

Conclusions

Increased intermuscular fat is associated with CMD and adverse cardiovascular outcomes independently of BMI and conventional risk factors. The presence of CMD and SM fat infiltration identified a novel at-risk cardiometabolic phenotype.

Structured Graphical Abstract Intermuscular adiposity, a novel ectopic fat depot, is associated with coronary microvascular dysfunction independently of body mass index and other conventional risk factors, and modifies its effect on adverse cardiovascular outcomes in patients with cardiometabolic disease. BMI, body mass index; CMD, coronary microvascular dysfunction; CT, computed tomography; INOCA, ischaemia and no obstructive coronary artery disease; MACE, major adverse cardiovascular event; PET, positron emission tomography.

Introduction

Overweight or obesity is prevalent in over 71% of US adults and has become one of the most important threats to public health worldwide. Compared to individuals with normal weight, those with obesity, defined as a body mass index (BMI) ≥ 30 kg/m2, experience cardiovascular disease (CVD) events at an earlier age and have a shorter average life span. Excess adiposity accelerates atherosclerosis and promotes adverse changes in cardiac structure and function through deleterious effects on the myocardium as well as the vasculature, and through obesity-related comorbidities, including hypertension, dyslipidaemia, and type 2 diabetes mellitus. Although increasing BMI is associated with increasing risk of morbidity and mortality across populations, CVD risk is not uniform for individuals with similar BMI and can vary substantially across sex and racial/ethnic groups. Nonetheless, BMI thresholds continue to guide current clinical diagnosis of obesity and candidacy for interventions with potential to improve CVD outcomes. Besides BMI, other discriminators of cardiovascular risk are needed in individuals at risk for cardiometabolic disease. Imaging technologies such as computed tomography (CT) can be used to assess body composition and distinguish between fat and lean mass directly in vivo via their respective radiodensities, or attenuation, within anatomical compartments.

Recently, intermuscular adipose tissue (IMAT) has emerged as a distinct adipose depot reflecting skeletal muscle (SM) fat infiltration with unique and evolving biological properties. Whereas fatty ‘marbling’ of meat is commercially valued in livestock, IMAT in humans has been associated with insulin resistance and type 2 diabetes. Intermuscular adipose tissue can be found in most SM groups, and while IMAT increases with BMI, it can vary considerably between individuals. Early reports suggest that IMAT has a proinflammatory secretome with increased expression of interleukin-6 and tumour necrosis factor, which may affect the metabolic function and insulin sensitivity of neighbouring muscle tissue, but the impact of IMAT on CVD events is not well understood.

Coronary microvascular dysfunction (CMD), quantified noninvasively using positron emission tomography (PET) as an impaired global coronary flow reserve (CFR < 2) with normal myocardial perfusion imaging, is independently associated with elevated BMI and future risk of heart failure (HF), myocardial infarction (MI), and death. It is also associated with residual inflammation and myocardial stiffness independently of conventional CVD risk factors in patients with cardiometabolic disease. We previously demonstrated an independent inverted J-shaped relationship between BMI and CFR such that in obese patients, CFR decreased linearly with increasing BMI (adjusted P < .0001). We found that CMD was prevalent in obese patients, worsened with increasing BMI, and was a better discriminator of CVD risk as compared to BMI. Given the limitations of BMI, we sought to investigate the relationship between IMAT, CMD, and cardiovascular outcomes. We hypothesized that measures of both SM quantity and quality are associated with CMD and modify its effect on CVD events independently of obesity.

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