Categoria dell'articolo: review
Pubblicato online: 16 giu 2025
Pagine: 153 - 167
Ricevuto: 13 dic 2024
Accettato: 15 mag 2025
DOI: https://doi.org/10.2478/raon-2025-0035
Parole chiave
© 2025 Tadej Rondaij et al., published by Sciendo
This work is licensed under the Creative Commons Attribution 4.0 International License.
Sarcopenia is defined as a loss of muscle mass and function, which affects 6–22% of older population1 and has a prevalence of up to 10% in the general population.2 Reduction in muscle mass may result from physiological (mostly hormonal) changes in advanced age, termed primary sarcopenia. Secondary sarcopenia may result from various pathological conditions or physical inactivity and is frequently associated with disturbances in the nutritional status, most notably malnutrition.3 Sarcopenia is now considered a muscle disease, with low muscle strength becoming the principal determinant, since muscle strength is superior to muscle mass in predicting adverse outcomes. Sarcopenia is associated with frailty, reduced quality of life, physical weakness, higher mortality, and increased healthcare costs.4–8
In clinical practice, sarcopenia is often overlooked and undertreated. Additionally, the reported prevalence of sarcopenia is highly dependent on the diagnostic method and on the criteria used for diagnosis.9–12 The European Working Group on Sarcopenia in Older People (EWSGOP2) propose that muscle strength should be used to assess whether sarcopenia is probable and then confirm the diagnosis based on reduced muscle mass and/or muscle quality. Since low physical performance predicts adverse outcomes, the degree of muscle function is proposed as an indicator of severity of sarcopenia.8 Even though extensive research regarding sarcopenia exists, accessible and accurate assessment of muscle mass and quality in a clinical setting remains challenging.
Muscle mass (quantity) can be estimated by various methods, with measurements usually adjusted for height or for body mass index (BMI). The most well-established radiological methods of measuring muscle mass are computed tomography (CT) and magnetic resonance imaging (MRI).8,9,13–15 Both methods provide accurate and reliable muscle mass measurements. However, several factors preclude the use of CT and MRI in everyday clinical practice for muscle mass and/or muscle quality measurement alone.8,9,16 Additionally, no consensus for cutoff points for sarcopenia has been reached regarding measurements of muscle quantity or quality obtained with either MRI or CT.
Dual-energy X-ray absorptiometry (DXA) is a more widely available instrument to non-invasively determine muscle quantity. Additionally, cutoff points for sarcopenia diagnosis have been established using DXA measurements. However, the method is relatively expensive, less accessible, and unportable.9,17 Additionally, results might not be consistent across different DXA instrument brands15,18,19, while the degree of concordance with gold standard techniques may depend on age and gender.15,20 DXA does not provide qualitative data regarding muscle tissue, which is increasingly valued in the assessment of sarcopenia.21 Since DXA examination is also associated with a small radiation dose, it is not suitable for all patients.
Bioelectrical impedance analysis (BIA) presents a relatively cost-effective and accessible method of body composition assessment, which is based on measuring the body’s resistance and reactance. The amount of muscle mass is calculated using prediction equations for a given population in lieu of being measured directly. The accuracy of results can therefore be affected by multiple factors, most notably the patient’s hydration status with fluid overload acting as a strong confounding factor.22,23
While more research has been made regarding the role of reduced muscle mass (muscle quantity) compared to changes in muscle quality in sarcopenic patients, it has become clear that muscle quality also plays a significant role in muscle function. Muscle strength has been shown to decline more rapidly than muscle mass, suggesting that age-related alterations of muscle composition may precede muscle mass reduction.24–26 Muscle quality may refer to muscle function (muscle strength or muscle power) per unit of muscle mass. However, it may be also interpreted as the relative presence of different components of muscle mass (e.g. muscle, vascular, fibrous and adipose tissue), thus referring to both micro- and macroscopic changes in muscle architecture and composition.8,24,27,28
Similarly to the definition of muscle quality, there is also no consensus regarding the most accurate assessment methods for muscle quality in routine clinical practice. CT and MRI are considered “gold standards” for non-invasive assessment of muscle quality. These examinations are used mostly in research settings and are not feasible to use in clinical practice exclusively for this purpose.29–31
There is an important and growing need for safe, non-invasive, accurate, cost-effective, and easily available methods that can provide information regarding both muscle quantity and quality, and that can be used in large population-based screenings.
Ultrasound (US) is an alternative method for assessing muscle mass and quality that is increasingly used in clinical practice for this purpose. US is a non-ionizing imaging technique that provides dynamic assessment of soft tissue structures, is portable, and highly accessible. A growing body of research shows that US is an accurate and reproducible method for measuring muscle mass in various populations.9,15,32–35 Ultrasound offers the advantage of evaluating individual muscles and muscle groups, a crucial capability given the growing evidence that age-related muscle mass decline varies significantly across different anatomical regions.36–38
The EWSGOP2 working group recognises ultrasound as an accurate method of muscle assessment, emphasize the advantage of this method as being able to assess both muscle quality and muscle quantity. However, the working group has also stressed the need for further research to confirm the validity of ultrasound in muscle assessment in patient populations with varying health conditions and functional status.8
Accordingly, ultrasound examination for this purpose still has several limitations. Currently, it is used primarily for research purposes and is not standardized. There are no established cutoff values for various parameters, and the number of studies conducted is limited, especially across different patient populations. Standardizing the methods is essential to enable extensive and comparative studies that can address these issues.
The aim of this review is to present an overview of the current knowledge in the field of ultrasound assessment of muscle mass, muscle quality and muscle function and to provide a comparison between ultrasound and reference methods of assessing muscle mass and muscle quality in clinical practice. Additionally, this review aims to highlight areas where further research is needed, as well as promote further awareness of ultrasound as a simple, accessible, and accurate method, which has the potential to be used in sarcopenia assessment and may contribute to earlier identification and treatment of this disease.
To identify the most recent evidence regarding the use of ultrasound in assessing muscle quantity, quality and muscle function and regarding agreement between the ultrasound method and reference methods for muscle assessment, a comprehensive bibliographic search was performed in the PubMed/Medline database using the keywords “ultrasound”, “sarcopenia”, “muscle mass”, “muscle quantity”, “muscle quality”, “muscle function”, “comparison”, “computed tomography”, “dualenergy X-ray absorptiometry”, and “bioelectrical impedance”.
The following filters were used for search refinement: meta-analysis, systematic review, review article, multicentre study, randomised controlled trial and clinical trial. We limited the search to the publication period from 2010 to 2024 and to articles published in the English language. We focused on research from five areas: »Utility of ultrasound for assessing muscle mass, muscle quality and muscle function«, “Utility of ultrasound for diagnosing sarcopenia”, »Ultrasound parameters«, »Ultrasound measurement protocol« and »Agreement between ultrasound and reference methods”.
Using the above-described search method, 1332 articles were identified in the PubMed database. After application of search filters, 278 articles were selected for further review. Only articles with available abstracts were reviewed. The articles were identified as relevant if they addressed at least one of the five above-mentioned areas of research. An additional 220 articles were excluded based on relevance. The remaining 38 articles were included in this review.
Various ultrasound parameters may be used to assess muscle mass and quality. The ultrasound parameters used in the research and clinical settings of sarcopenia management are muscle thickness (MT), muscle cross-sectional area (CSA), echo intensity (EI), muscle fiber pennation angle (PA) and muscle fiber length (FL). Additional parameters used in ultrasound muscle assessment include muscle volume (MV), muscle stiffness assessed through elastography, muscle contraction potential, and assessment of muscle microcirculation with contrast-enhanced ultrasound (CEUS).39,40 A summary of the most commonly utilised ultrasound parameters is shown in Table 1.
Ultrasound parameters used in muscle assessment, with main advantages and limitations
Parameter | Definition | Site of assessment | Advantages | Limitations |
---|---|---|---|---|
Muscle thickness (MT) | Distance between the superficial and deep muscle fascia | Every muscular compartment (most studies on upper leg muscles) | Simple to measure High validity and reliability |
Requires standardisation and fixed anatomic landmarks |
Anatomical crosssectional area (ACSA) | Area of the muscle perpendicular to its longitudinal axis at the point of the largest muscle diameter | Any muscle compartment which can be wholly visualised by ultrasound | Studies have shown high validity and reliability Demonstrated diagnostic accuracy of varying degrees for sarcopenia and low muscle mass | Requires standardisation and fixed anatomic landmarks |
Physiological crosssectional area (PCSA) | Area of the muscle perpendicular to the course of its muscle fibers at the point of the largest muscle diameter | Muscle strength can be inferred from PCSA | ||
Echo intensity (EI) | Median brightness of ultrasound image, expressed in gray scale (0–255) | Every muscle compartment | Provides information regarding the degree of intramuscular fatty infiltration |
Requires standardisation Measurements may be influenced by various external factors (e.g. ultrasound image settings, probe tilt, patient rest duration, participant positioning, patient’s hydration status, subcutaneous adipose tissue etc) |
Fascicle length (FL) | Length of the fascicular path between the insertions of the fascicle into the superficial and deep muscle aponeuroses | Pennate muscles (mostly of the lower limb) | Provides information regarding the maximum force and speed of muscle fiber contraction Related to the force generating capacity of the muscle and muscle function | Requires specific operator training Accuracy of measurements are highly dependent on correct measurement technique (e.g. joint position, muscle contraction during measurement, probe placement on the skin, probe orientation relative to the muscle fiber course etc. |
Pennation angle (PA) | Angle of insertion of muscle fiber fascicles into the deep aponeurosis | |||
Contrast enhanced ultrasound (CEUS) | Used to assess the degree of muscle vascularisation | Muscles of upper leg, most commonly quadriceps femoris | Provides information on changes of muscle vascularization, which has been shown to be a contributing factor in sarcopenia pathogenesis | Requires specific operator training and the use of contrast agents The utility of this method in the clinical setting is still unclear |
Although an increasing number of studies incorporate various ultrasound parameters in muscle assessment, the most commonly measured parameters to assess muscle quantity and muscle quality remain muscle thickness and echo intensity, respectively. Due to their accessibility, size and location, upper and lower leg muscle groups, namely gastrocnemius and quadriceps femoris (particularly rectus femoris) are most widely measured. Additionally, most studies have shown that ultrasound parameters of these muscles are superior compared to other muscle groups regarding validity of the method to detect sarcopenia.9,41 The vast majority of studies have utilised linear transducer probes for muscle assessment, as is recommended by the European Geriatric Medicine Society (EuGMS) SARCUS (SARCopenia through UltraSound) working group, since linear transducer probes are more adapted to assess muscle anatomy. However, some studies have shown comparable reliability and validity of both curved and linear probes for select ultrasound parameters and muscle groups.42,43
The most commonly used methods for assessment of muscle mass (quantity) both in clinical practice and research settings are magnetic resonance imaging (MRI), computed tomography (CT), dual-energy X-ray absorptiometry (DXA) and bioelectrical impedance analysis (BIA).
CT examination provides an accurate and reliable assessment of muscle mass and represents the gold standard for non-invasive muscle mass assessment. However, due to the associated high dose of radiation, it is not suitable for neither everyday clinical use in sarcopenia management, nor can the use of CT be justified for purely research purposes. DXA and BIA are more widely available, yet both methods present with certain limitations regarding either accuracy, cost-effectiveness and/or accessibility.
The following sections present an overview of ultrasound parameters, used in muscle quantity assessment, and of research on the agreement between these parameters and reference methods in sarcopenia diagnosis. Ultrasound parameters that have been used in muscle quantity assessment studies are muscle thickness, cross-sectional area and muscle volume.
Muscle thickness is perhaps the most widely studied muscle ultrasound parameter in sarcopenia research. Muscle thickness represents the distance between the superficial and deep muscle fascia, while some authors define it as the distance between the bone-muscle interface and the adipose tissue-muscle interface.44 Muscle thickness is considered a reliable parameter for quantitative ultrasound muscle assessment9, which can be easily and quickly measured.
Several studies have confirmed good reliability and validity of ultrasound-measured muscle thickness compared to reference imaging methods (DXA, CT, MRI) and direct cadaver measurements.9,45-50 One study concluded that measurements of gastrocnemius medialis thickness obtained by ultrasound are reliable and correlate well with DXA-derived appendicular lean muscle mass and muscle performance in older individuals.21
In a study on patients with cirrhosis and sarcopenic obesity, Dhariwal
In a recent comprehensive meta-analysis, Fu
A meta-analysis by Li
Despite promising results, further research is required to determine the general utility of US-measured muscle thickness in predicting sarcopenia. Some authors have suggested correcting the muscle thickness according to body mass or body mass index (BMI), since body weight may influence muscle thickness through increase of local adipose deposits.56 Regarding muscle volume, several prediction equations have been proposed based on measurable muscle ultrasound parameters and muscle volume determined by MRI.57,58 However, more studies are needed to correlate muscle thickness to total muscle volume of individual muscles using the proposed equations.
The cross-sectional area (CSA) of the muscle depends on the number and size of individual muscle fibers and is usually determined at the point of the largest muscle diameter. It is important to distinguish between anatomical and physiological cross-sectional muscle area. The anatomical cross-sectional area (ACSA) is the area of the muscle perpendicular to its longitudinal axis, while the physiological cross-sectional area (PCSA) is the area of the muscle perpendicular to the course of its muscle fibers (ie, muscle volume divided by fascicle length). Anatomical cross-sectional area (ACSA) and physiological cross-sectional area (PCSA) are equivalent in non-pennate muscles.; however, in pennate muscles, they differ.59 Muscle strength is more closely related to PCSA than to ACSA because PCSA represents the maximum number of potential actin-myosin cross bridges that can be activated in parallel during contraction. Therefore, when assessing muscle strength, relying solely on ACSA measurements is not recommended.59,60 Muscle strength can be inferred from the cross-sectional area, as it correlates with muscle volume.61 Although an indirect assessment of muscle strength, it can prove useful in patients who are incapable of active muscle contraction.62
In a study involving a small group of healthy elderly individuals, Reeves
Seymour
A meta-analysis conducted by Zhao
A nationwide multicentre study on 991 hospitalised patients at risk for malnutrition demonstrated a significant positive correlation between the rectus femoris CSA and BIA-derived body cell mass as well as with handgrip strength, and a significant negative correlation with the Timed Up and Go test. Additionally, cutoff points of ultrasound measurements were determined for probable, confirmed, and severe sarcopenia.65 For several muscles/muscle groups, it might prove difficult to measure cross-sectional area with conventional ultrasound methods and standard linear probes. Extended field-of-view modes may be used to facilitate imaging in these cases.
As mentioned above, no consensus has been reached on the definition of the term muscle quality, which is used to describe both changes in muscle specific strength as well as the composition of muscle tissue. However, myosteatosis is the most commonly used indicator for muscle quality in both clinical practice and research setting. The term myosteatosis describes the pathological fatty infiltration of muscle tissue and is, independent from sarcopenia, negatively associated with survival and other adverse treatment outcomes in various patient populations.66–69 Muscle biopsy is considered the gold standard for assessing the degree of myosteatosis; however, due to its invasive nature and potential for complications, it is not used in routine clinical practice. CT examination is the most accurate non-invasive method for assessing myosteatosis, in which tissue attenuation is measured and expressed in Hounsfield units (HU).70
Several other novel indicators for muscle quality have been proposed, including BIA-derived phase angle. With the continued development and refinement of methods for assessing muscle tissue quality, these indicators are expected to become increasingly important in the diagnosis and management of sarcopenia.8
Ultrasound parameters used in the assessment of muscle quality are pennation angle, fascicle length and echo intensity. Additionally, muscle stiffness, determined by sonoelastography, contraction potential as well as assessing microcirculation using contrast-enhanced ultrasound may provide further information on muscle quality.
The following sections provide an overview of ultrasound parameters and techniques for muscle quality assessment as well as available data on agreement with reference methods.
Information regarding muscle composition may be obtained by measuring the echo intensity (EI) of the muscle, also termed muscle echogenicity.71 Increased EI is an indicator of muscle degeneration, which presents as an increase in the proportion of intramuscular fatty and connective tissue.72 Echo intensity is most often determined by analysing the intensity of image points of the US image using grey scale analysis. A histogram function is used in the analysis, which is enabled by several image processing programs. This type of quantitative grey scale analysis has been shown to be more accurate than visual subjective US image assessment.73 In a study on 40 young and older adults, Watanabe
Based on several studies, echo intensity of lower limb muscles appears to be useful in sarcopenia detection. Isaka
Concerns have been raised regarding low interand intra-rater reliability of echogenicity measurements. Strasser
The method of measuring EI has several limitations. The EI of muscles in the elderly population and in certain patient populations is significantly higher than in younger people, which must be considered in the final assessment.81 The assessment may also be influenced by various external factors, e.g. ultrasound probe parameters, probe tilt, patient rest duration, participant positioning, and the patient’s hydration status.62 Additionally, inconsistent methodological approaches used across studies measuring EI make comparing results challenging.
Fukumoto
Girts
The effect of subcutaneous fat on EI measurement has also been the subject of numerous studies, with some conflicting results. Young
The exact influence of different US system settings and subcutaneous fat on EI measurements remains unclear. However, it seems imperative to use standardised settings as well as to assess the need to correct for subcutaneous fat thickness. Furthermore, more advanced image processing techniques, commonly referred to as texture analysis, have been suggested to potentially overcome some of the limitations linked to muscle echo intensity measurements.91
Muscle architecture can be described by the angle at which muscle fibers are connected to the fascia (pennation angle), as well as the length of the muscle fibers (fascicle length), both of which can be measured by US. The pennation angle was defined as the angle of insertion of muscle fascicles into the deep aponeurosis, while fascicle length was defined as the length of the fascicular path between the insertions of the fascicle into the superficial and deep aponeuroses.59,92
Muscle architecture plays an important role in muscle force generation and is related to muscle function.93 In sarcopenia, due to the smaller number of consecutive sarcomeres, the length of muscle fibers is reduced, while the pennation angle becomes smaller.92 Both parameters are related to a decrease in the maximum force and speed of muscle fiber contraction in sarcopenic patients.94,95
The measurements of muscle architecture parameters are highly dependent on correct measurement techniques. Joint position, muscle contraction during measurement, probe placement on the skin as well as probe orientation relative to the muscle fiber course may influence results.96,97 In cases where the fascicle extended beyond the boundaries of the acquired ultrasound image, the length of the missing portion can be estimated by linearly extrapolating both the observed fascicular trajectory and the aponeurosis.59,92,98 Concerning pennation angle measurement, significant variability may occur regardless of the measurement site, potentially due to differing levels of myosteatosis and/or fibrosis within the same muscle.99
Regarding calculation of fascicle length, several authors57,100 used the following formula:
One study reported the intra-rater correlation coefficient for the measurement of the pennation angle of the gastrocnemius medialis muscle ranging from 0.738 to 0.820.21 Several studies have shown good reproducibility of measurements in young individuals101, whereas Strasser
The utility of muscle pennation angle measurement to differentiate sarcopenic vs. non-sarcopenic adults remains unclear. Similarly, while the fascicle length tends to shorten with advancing age, its capability of differentiating patients with and without sarcopenia is also questionable. In a study carried on 100 elderly community-dwellers, Kuyumcu
As a measurement of muscle quality, the use of pennation angle in combination with other ultrasound parameters might provide a more comprehensive assessment of overall muscle health in sarcopenic individuals. The use of pennation angle in sarcopenia research remains relatively new, and further research is needed to validate its utility. Ultrasound measurement of fascicle length and pennation angle of pennate muscles requires standardized protocols of assessment and specific training of operators. Adequate reproducibility might be achieved once these criteria are met.
The microcirculation of the skeletal muscle is the primary and most important site for capillary-tissue exchange of nutrients, oxygen, and hormones, particularly during exercise.104 CEUS is used to assess the degree of muscle vascularization. Reduced blood flow to the muscles, caused by microvascular damage and decreased nitric oxide production, has been cited as a significant factor in the development of sarcopenia.105,106 Mitchell
Elastography is based on the change of the muscle’s biomechanical properties due to the increased content of fibrous and adipose tissue as well as glycated products.108 By measuring the change in muscle stiffness, information regarding muscle function (strength, power, range of motion) can be obtained.39 Shear wave sonoelastography, in contrast to strain mode, seems to have emerged as the dominant and superior modality for assessing muscle stiffness.109,110 Alfuraih
Due to conflicting research results, it remains unclear whether muscle stiffness increases or decreases with age.112–114 Janczyk
As of now, there is no universally accepted standardized approach for conducting muscle ultrasonography in clinical practice. In 2018, The European Geriatric Medicine Society (EuGMS) SARCUS (SARCopenia through UltraSound) working group published their first recommendations on the standardization of the use of ultrasound for muscle assessment. In 2021, SARCUS proposed an updated consensus protocol for using ultrasound in muscle assessment, including measurement of muscle thickness, cross-sectional area, fascicle length, pennation angle and echogenicity.39
Both the EWSGOP2 and the SARCUS working groups emphasize that ultrasound has proven to be an accurate and reliable technique of muscle mass measurement in different populations, while showing high repeatability. However, standardization of measurement methods is paramount to perform extensive and comparative studies.8,39 The following paragraphs highlight the important aspects regarding standardisation of measurement protocols.
Due to its size, accessibility and comfort for the patient, US assessment of muscle mass is most often performed at the anterior compartment of the thigh. However, standardized anatomical landmarks and measuring points have now been proposed for 39 muscles/muscle groups.39 Standardization of ultrasound measurement points is vital due to the absence of definitive data regarding the extent of heterogeneity in ultrasound parameters across the muscle bulk.116
According to recommendations, muscles should be assessed in a relaxed state. Patients should refrain from any physical activity for at least thirty minutes and should remain in a lying position for the last five minutes prior to examination.39,117 This is important since physical activity or changing the body’s position may affect the fluid distribution and in turn the measured parameters.117
Studies have shown that the position of the patient as well as head of bed elevation during ultrasound assessment can significantly affect measurements, therefore using a standardized technique regarding positioning is vital during the examination.118 For follow up measurements, the same position should be used as during the first exam.
Depending on the muscle/muscle group being measured, patients should be examined in either supine or prone position. In clinical practice, some patients might find it difficult to lie in a prone position. Therefore, a sitting position, with knees and ankles bent in 90°, may be used to examine certain muscle groups, e.g. lower leg muscles and muscles of the head and neck.39
Muscle fiber pennation angle and fascicle length should be measured while keeping the transducer probe perpendicular to the longitudinal axis of the muscle. Cross-sectional area and echo intensity should be determined from images obtained by the probe being placed parallel to the longitudinal muscle axis. Muscle thickness can in practice be measured using either probe placement. Some parameters, such as muscle thickness, can easily be measured during the examination, while others (e.g. echo intensity) will need to be additionally analysed post examination. The US images can be analysed using various open-source scientific image processing programs, e.g. ImageJ (
A high-frequency linear ultrasound probe (5–10 MHz) is usually recommended for muscle assessment. A minimum transducer length of 5 cm seems advisable to visualise as much tissue as possible, particularly in subjects with a larger muscle bulk. Standard B-mode should be applied to visualize the different muscle components. A copious amount of ultrasound gel should be used to avoid excessive pressure on the muscle, which could affect the measurements. It is advised to keep the probe as perpendicular to the skin surface as possible.
Ultrasound system settings can be set to have the best possible view of the muscle that is to be assessed. However, since these settings may significantly affect measurements of certain parameters (particularly echo intensity), settings should be standardised for study purposes as well as for follow up examinations in the clinical setting, particularly for specific muscles/muscle groups. This is particularly important for follow up examinations and in research settings, to produce reliable and comparable results.
There is no consensus on whether the muscles of the dominant or non-dominant side of the patients are to be assessed. Studies have reported measurements from both dominant and nondominant sides, while other studies did not report this information. Since it is not clear whether the measurement side has clinical relevance, it is paramount for future research purposes and analysis to clearly indicate which side was assessed.
The accuracy of ultrasound parameters in assessing muscle function has been a subject of numerous studies. Assessment of muscle function presents one of the cornerstones of sarcopenia diagnosis. While muscle strength can be used as a strong indicator of sarcopenia, the deterioration of physical performance may serve as an indicator of disease severity. Therefore, determining the reliability of ultrasound parameters in assessing muscle function may provide further opportunity to incorporate ultrasound in sarcopenia diagnosis.
A significant association between ultrasound-measured forearm muscle thickness and hand grip strength was demonstrated in both young and elderly volunteers.119,120 Other authors found a significant correlation between hand grip strength and ultrasound measurements of lower limb muscles as well.121 Seymour
Ismail
In a study on 26 young and 26 older individuals, Strasser
Conversely, Fukumoto
The clinical correlations between site-specific muscle loss and physical performance remains poorly understood. A study on older communitydwelling women conducted by Abe
In a scoping review, Kitagawa
As of now, it is not yet clear whether any ultrasound parameter can be used as a strong indicator for physical performance. However, based on current research, qualitative parameters, such as echo intensity, might indeed be proven to be superior in this regard.
Despite having numerous advantages compared to other diagnostic methods, the use of ultrasound in muscle assessment still presents with several limitations. A large proportion of research in the field of US muscle assessment has been done on healthy populations, which does not necessarily reflect the dynamics of muscle parameter changes in different patient populations. Additionally, ultrasound parameters regarding muscle quality and quantity do not have clearly defined reference values. To establish this, large-scale longitudinal studies both on healthy people and patient cohorts should be done, which would enable satisfactory differentiation between normal and sarcopenic states. Third, muscle quantity and quality values could be subject to change, particularly due to systemic inflammation, muscle damage or changes in fluid balance, vascular permeability or glycogen levels.134,135 Additionally, the exact spreading pattern and evolution of the different architectural components throughout the muscle is still unclear, as well as the exact influence of pre-investigation physical activity and patient position on the accuracy of measurements. Also, examiners require a certain level of experience and/or training. Intraand inter-rater reliability has been a subject of concern, particularly for muscle quality parameters (e.g. echo intensity), while large muscles, such as the quadriceps, are quite easily quantitatively assessed. The influence of ultrasound system settings on measurements should also be considered.
Furthermore, it is still unclear which muscle group parameters correlate best with overall muscle quantity and quality. While a lot of research has been focused on large muscle groups, smaller muscles have received relatively little attention yet may be of equal interest due to their specific functions.39 Additionally, while most of the research focused on the diagnostic utility of ultrasound parameters of superficial muscles, some studies have included measurements of deeper muscles, most commonly vastus intermedius and the soleus muscle. The depth of muscle tissue being assessed may influence the accuracy of measurements, particularly of muscle quality (e.g. echo intensity). Therefore, several authors have encouraged the use of a correction factor considering subcutaneous fat thickness, although results using this method have been conflicting. In obese patients with a deeper layer of subcutaneous fat, the ultrasound image depth and focus may need to be adapted to improve visualisation, and the use of correction factors should be considered. At the same time, it is paramount to establish standardisation of both ultrasound system settings and methodology of measurements.
Furthermore, the validity of ultrasound-derived prediction equations for the estimation of muscle mass in older adults is also yet to be established, due to the lack of definitive results from studies.9 Therefore, it is vital to harmonize ultrasound measurement protocols and establish cutoff values for sarcopenia diagnosis, which would also provide more reliable metadata in the future.
Ultrasound muscle examination is a safe, accessible, and reliable method which has the potential of becoming a valuable tool in the diagnosis of sarcopenia. As the population continues to age, finding accurate and reliable methods for assessing muscle mass and muscle quality will become increasingly important. Early sarcopenia detection would enable more effective treatment and thus help reduce morbidity and mortality in these patients. Similarly, since sarcopenia is a proven negative prognostic factor for postoperative recovery, the implementation of a novel method for simple and non-invasive assessment of muscle tissue would enable a wider screening of patients at risk of sarcopenia and enable the adjustment of pre-operative preparations, treatment and rehabilitation, thereby improving treatment results.
To date, studies regarding agreement between ultrasound parameters and reference methods have shown that ultrasound is a potentially accurate diagnostic tool for sarcopenia detection, particularly when using muscle quantity parameters of lower extremities. Due to the heterogeneity of studies regarding ultrasound assessment of muscle quality, no definitive conclusions can yet be made, although it seems certain ultrasound parameters might prove accurate in assessing muscle function.
In general, the inclusion of ultrasound in the clinical practice of muscle assessment in patients with sarcopenia might potentially improve risk stratification and facilitate clinical decision-making regarding the need of nutritional and other interventions.
There are still several limitations that preclude the implementation of the ultrasound method in muscle assessment in everyday clinical practice. However, with growing interest in the utility of ultrasound in sarcopenia diagnosis, along with increasing availability of ultrasound, future studies, preferably on larger cohorts of both healthy volunteers and different patient groups, could clarify remaining uncertainties and provide definitive evidence regarding the utility of this promising method.