Skip to main content

Sarcopenia in Egypt: epidemiology of sarcopenia risk among older adults presenting with fragility fractures—an initiative by the Egyptian Academy of Bone Health

Abstract

Purpose

(1) This was a multi-center, cross-sectional, observational study. Both old men and postmenopausal women over 50 years old who were admitted with an osteoporotic fracture (whether hip fracture or major osteoporosis) were consecutively recruited for this work and managed under the Fracture Liaison Service. All the patients were assessed for their sarcopenia risk (SARC-F), fracture risk (FRAX), and fall risk (FRAS) as well as functional disability (HAQ). The aim was to assess the prevalence of sarcopenia risk among older adult Egyptians presenting with fragility fractures. (2) To identify the relation between sarcopenia risk with the risk of falling as well as sustaining a fragility fracture.

Results

Two hundred and thirty-six patients (69 males, 167 females) were included in this work. The mean age was 70.1 (SD = 9.2) years. The prevalence of sarcopenia was 69.7%. The sarcopenia risk score was positively correlated with the FRAX score (p = 0.01). The prevalence of high sarcopenia risk was 78% of the patients presenting with a high 10-year probability of major osteoporosis fracture as well as a 10-year probability of hip fracture. The sarcopenia risk score was positively correlated with the increased fall risk (p = 0.01) as scored by the FRAS scale. There was a significant relation (p < 0.05) between the functional disability score and the SARC-F score. This was persistent when assessed in relation to fall risk.

Conclusion

This study highlighted the high sarcopenia risk in the patients presenting with fragility fractures. Identification of patients at increased risk of sarcopenia should be a component of the standard practice.

Background

Aging of the musculoskeletal system is characterized by a “loss” triad: loss of muscle mass and consequently strength, loss of bone mass and consequently fractures, and loss of balance and consequently falls. This triad is one of the typical features of the aging process. The definition of sarcopenia as an age-related condition has been recently updated to involve 3 components: decreased muscle mass, decreased muscle power, and impaired muscle dysfunction [1].

Evidence was revealed from both prospective and cross‐sectional research, indicating the presence of variable directions of causal pathways, that is, sarcopenia as a predisposing factor for falls and consecutive fractures, and in turn falls and fractures as a reason for sarcopenia [2]. As independent mobility is a fundamental component of healthy aging, over the span of years, there has been rapidly growing interest in the underlying mechanisms and possible interactions in the musculoskeletal system that cause such deterioration in the locomotor health in older adults.

Sarcopenia has a broad spectrum of seriousness and damage leading to incapacitation and frailty [3]. It can also be regarded as a poor prognostic risk factor for a variety of chronic illnesses including type II diabetes mellitus, liver cirrhosis, and tumors [4]. Furthermore, sarcopenia puts the older adult at a higher risk of all-cause mortality in comparison to non-sarcopenic older adults > 60 years (HR 1.29 [NANHES III]) and predominantly in > 80 years older adults (HR 2.32 [aging and longevity study]) [5,6,7].

Though in older adults, sarcopenia is considered a potential modifiable risk factor for fractures and falls, the strength of such a relation is not clear. In community‐dwelling older adults, sarcopenia prevalence ranges from 2 to 37%, depending on which sarcopenia definition has been adopted [8,9,10]. Interventions to manage or prevent sarcopenia have been reported to be effective in increasing muscle mass, strength, and physical function [11, 12]. However, on the other hand, it has been shown yet that this leads to a reduction of fractures and falls [2]. In Egypt, there has not been a study to assess sarcopenia risk in older adults and its association with falls and fracture risk. This work aimed to assess the prevalence of sarcopenia among older adults presenting with fragility fractures to the Fracture Liaison Service (FLS). Also, to define the relation between increased sarcopenia risk with increased risk of falling as well as sustaining a fragility fracture.

Methods

Study design and setting

This is a multicenter, cross-sectional observational study to assess the sarcopenia risk and its associated risk factors among Egyptian men and postmenopausal women above the age of 50 years. Data were recovered from the Fracture Liaison Service (FLS) National Register database during the period of February 2022 to February 2023.

Targeted population and case definition

Egyptian patients, above 50 years of age, either male or postmenopausal female presenting with one of the major osteoporosis fractures or hip fragility fractures were assessed as part of the local FLS services. Fragility fracture defined as a fracture after falling from standing height or less was included; however, those with pathological fractures or a history of violent trauma were excluded from the study.

Two hundred seventy-three age and sex-matched patients were enrolled as control. Patients with conditions contributing to the development of secondary sarcopenia, e.g., malignancy, advanced chronic illness, and malnutrition or past history of fragility fracture, were excluded from sharing in this study.

Patients’ assessment

Patients’ assessment was carried out by the principal FLS investigators for all the participants. This included the following:

  1. 1.

    Filling a structured baseline questionnaire that consisted of (a) complete history taking, including smoking, alcohol use, medication including glucocorticoids, previous fracture, or family history of fracture in a first-degree relative; (b) general clinical examination, including height and weight, with BMI calculated; (c) examination of the locomotor system; and (d) patients with a history of joint replacement were assessed regarding the site and mechanism of injury.

  2. 2.

    Fracture risk assessment was carried out using the FRAX score. Other risk factors for fractures were also identified including low-impact trauma fracture in the past 2 years, cancer prostate on androgen depletion therapy, cancer breast on hormone antagonist therapy, thyroid diseases, and epilepsy (on anticonvulsant therapy)

  3. 3.

    Bone mineral density assessment was carried out using a hologic DXA scan. T and Z score were calculated for every patient.

  4. 4.

    Assessment of functional disability using Health Assessment Questionnaire (HAQ) [6]

  5. 5.

    Evaluation of sarcopenia risk was carried out using the Arabic SARC-F questionnaire [7]. The questionnaire screens patients for 5 self-reported signs suggestive of sarcopenia, namely impairment in strength, walking, rising from a chair, climbing stairs, and suffering falls. Each of these parameters receives a score from 0 to 2, respectively, with the maximum SARC-F score of 10. A SARC-F score of ≥ 4 indicates an increased risk of sarcopenia and the need for further, more comprehensive assessment.

  6. 6.

    Fall risk assessment (FRAS) was carried out for every patient using the FRAS questionnaire [8]. The questionnaire includes 5 questions: fall history in the last 12 months, slowing of the walking speed/change in gait, history of loss of balance in the last 12 months, and impaired sight and weak hand grip. The FRAS score ranged from 0 to 6.5 and met the percent chance of experiencing a fall. A score ≥ 3.5 indicates a high-fall risk.

Data manipulation and statistical analysis

Data was revised for missing, and consistency before appropriate statistical analysis is conducted. All collected categorical data were described as frequency and percentages. The chi-square test was used to test the association between 2 categorical variables, and continuity correction was taken in the 2 × 2 table. P value was always set at 0.05, and all statistical analyses were performed using the 26th version of SPSS.

Results

The total number of 390 patients (136 males, 254 females) were included, with a mean age of 70.1 (SD = 9.2) years. One hundred ninety-one patients (47.2%) of the patients were above 70 years old, 138 patients (34.1%) were between 60– ≤ 70 years old whereas 76 patients (18.8%) were between 51– ≤ 60 years old. All patients were either admitted to the hospital with hip fractures or attended the fracture clinic with spine or any other major osteoporosis fracture. BMD results were available for 186 of the patients. Accordingly, a subset of the cohort provided the number of patients classified as osteoporosis depending on the T score. As regards the control group (n = 274), their mean age was 59.93 (SD = 13) and the sarcopenia was reported in 53.28% of them.

The prevalence of high sarcopenia risk among patients presenting with fragility fracture

The prevalence of sarcopenia risk (Table 1) was persistently and significantly high in all age groups in both men and women who sustained fragility fractures. In total, 272/390 (69.7%) of the patients with fragility fractures had a history of one or more falls in the last year. It is significantly higher in the fractured group compared to the control non-fractured ones (p < 0.05).

Table 1 Sarcopenia risk in patients presenting with osteoporotic fragility fractures in relation to age and sex

Sarcopenia risk in relation to fracture risk

Table 2 shows some of the risk factors for sarcopenia in the study group. Diabetes mellitus, hypertension, and smoking were the most significant risk factors that were correlated to sarcopenia risk. Assessing the relation of sarcopenia to the fracture risk probability revealed that the sarcopenia risk score was positively correlated with the FRAX score (P < 0.01). The prevalence of high sarcopenia risk was 78% of the patients presenting with a high 10-year probability of major osteoporosis fracture as well as a 10-year probability of hip fracture (Table 3). Assessing the relation between the sarcopenia risk and BMD revealed that 70% of the osteopenia patients who sustained fragility fracture had high SARC-F score and or fall risk.

Table 2 Risk factors of sarcopenia in the study group
Table 3 Sarcopenia risk in relation to the FRAX categories

Sarcopenia risk in relation to falls

Table 4 shows that the sarcopenia risk score was positively correlated with the increased fall risk (P < 0.01) as scored by the FRAS scale.

Table 4 The prevalence of the sarcopenia risk and functional disability in relation to the fall risk assessed by FRAS score

Assessment of functional disability

Assessment of functional disability revealed a significant relation (p < 0.05) between functional disability score and SARC-F score. This was persistent when assessed in relation to fall risk (Table 5).

Table 5 Relation between sarcopenia risk and both quality of life, fall risk

Discussion

Sarcopenia is a common syndrome in older adults which reflects a gradual decline in mass and strength with increased risk of weakness, falls, fractures, and mortality in this cohort of population [2]. This study was carried out to assess the prevalence of sarcopenia among older adults presenting with fragility fractures and to study the relation between increased sarcopenia risks with increased risk of falling as well as sustaining a fragility fracture.

The study revealed a high prevalence of sarcopenia risk among Egyptian older adults in both the control group as well as the cohort of patients who presented with fragility fractures. It was significantly higher in the studied group with low trauma fractures. In Egypt, the prevalence of sarcopenia risk among the general population was not studied before; however, globally, sarcopenia was estimated to affect 10–16% of the elderly population. Compared to the general population, sarcopenia was found to be more prevalent among older adults. Its prevalence ranged from 18% in diabetic patients to 66% in patients with non-operable oesophageal cancer [13]. This study revealed a significant relation between diabetes mellitus and sarcopenia among the Egyptian population. This is important as the prevalence of diabetes mellitus in Egypt is 25.5% in Egyptian women and 22.6% in Egyptian men [] (Egypt is ranked ninth in the prevalence of DM worldwide) [14]. Similarly, there was a significant relation between sarcopenia and hypertension among Egyptians. This is of relevance as hypertension has been reported in 71.8% of Egyptian women and 59.9% of Egyptian men above the age of 60 years old [15]. A third significant relation was reported between sarcopenia risk and smoking. Recent data revealed that the percentage of smokers in Egypt decreased from 17.3% in 2020 to 16.8% in 2022, according to surveys conducted by the Central Agency for Public Mobilization and Statistics (CAPMAS) [16].

Genetic variants have been also linked to age-related sarcopenia. NUDT3, RPS10, and GPD1L have been identified as appreciable genetic biomarkers for sarcopenia. These genetic loci are linked to energy and lipid metabolism, suggesting that genes involved in metabolic dysregulation may lead to the pathogenesis of age-related sarcopenia [17]. This would warrant a genetic study for sarcopenia patients in Egypt. On another front, less than 10% of the Egyptian population participates in regular exercise, and the most sedentary group is older than 50 years of age [18]. Even among healthcare providers, a recent study reported the low prevalence of regular exercise and its inverse relation to the female gender, physical exertion, BMI, and direct relation to life enhancement benefit subscale score. This was persistent among both physicians and nurses [19]. Nutritional factors can also contribute to such a high prevalence of sarcopenia risk in Egypt. Vitamin D deficiency was reported in almost all the Egyptian studies [20, 21]. The overall prevalence of vitamin D deficiency with vitamin D less than 30 ng/ml was 90.09%, while only 9.03% were within the normal vitamin D range [20]. This highlights the importance of health education programs targeting older adults explaining the benefits of exercise. Programs for sarcopenia awareness and physical exercise promotion as well as appropriate nutrition and vitamin supplementation initiatives have already been in collaboration with the Food Bank in Egypt and the Egyptian Academy of Bone Health [22]. This agrees with the World Health Organization (WHO) recommendations which state that all adults are advised to engage in regular exercise that is outlined as “any planned physical activity performed to increase physical fitness. Such activity ought to be performed 3 to 5 times per week for 20–60 min per session” [23].

The increased risk of sarcopenia was similar in both males and females included in this work, though there were slight, insignificant, variations at different age groups. This agrees with the results of a recent systematic review and meta-analysis of general population studies to assess the global prevalence of sarcopenia [24] which reported similar sarcopenia prevalence in both genders.

Hormonal changes that occur in older adults might explain such findings. After menopause, there is a dramatic decrease in the sex steroid concentrations, both estrogens and androgens [25]. In women, the decline of sex steroids is much faster than in men [26]. This could explain the slightly higher prevalence of sarcopenia among women aged between 60 and 70 years. After the seventh decade of life, the concentrations of testosterone in men decline rapidly which may contribute to the decline in lean body mass and the development of sarcopenia.

The results of this study revealed a significantly higher prevalence of sarcopenia risk in relation to the fracture risk (as assessed by FRAX score). Also, 70% of the osteopenia patients who sustained fragility fractures had a high SARC-F score and or fall risk. This is of vital importance as the identification of all modifiable risk factors particularly sarcopenia has been recognized as a key factor for fragility fracture prevention which is an important problem in all ageing societies. This could be a favorable approach to stop the devastating threat of the “hazardous duet” [27] which best describes the combined impact of both sarcopenia and osteoporosis. The increased risk of fracture in patients with sarcopenia and osteoporosis can be linked to a decrease in muscle mass and strength, decreased bone density, and limited movement [28, 29].

This study revealed a positive correlation between the sarcopenia risk score and the high fall risk (P = 0.01). This agrees with the outcomes of earlier studies which reported that elderly people with sarcopenia have a fold risk to fall [2, 30]. Preventing falls relies on ensuring core stability and improving the capacity for correcting the imbalance, sway, and trips which is mainly controlled by the combined neuromuscular fitness. Studies of sarcopenic muscles revealed that sarcopenia is characterized by 2 principal features: loss of both motor neurons and fast twitch type II fibers. These losses are critical key factors involved in the occurrence of falls [31].

The causal nexus between osteoporosis and sarcopenia could be explained by the close relation between bones and muscles. They are not only anatomically adjacent but also share similar molecular signal regulation pathways, endocrine and paracrine control, and common therapeutic targets and drugs [32, 33], which are biologically and functionally in line with increasing the risks of fracture in the elderly [34]. A study published in the American Journal of Physiology (Cell Physiology) found that RANK is expressed in fully differentiated C2C12 myotubes and skeletal muscles [35]. This was supported by the results of a recent study that reported the positive impact of Denosumab on all sarcopenia measures and the reduction of fall risk with the improvement of multidirectional agility [36].

The limitation of this work is that it was based on a sarcopenia risk assessment. Further assessment to meet the EWGSOP definition of sarcopenia is recommended to assess the prevalence of sarcopenia in Egypt. Genetic analysis is also warranted to assess for genetic predisposition to this disorder.

In conclusion, sarcopenia is an underestimated major clinical problem in public health among older people; with hostile consequences such as fractures, falling, disability, and poor quality of life. The results of this work revealed a high prevalence of sarcopenia risk in Egyptian patients with fractures. It was also significantly associated with increased fall risk. This is alarming for clinicians. Effective measures should be considered to slow down or even reverse the sarcopenia progression in older adults and avert the occurrence of adverse clinical outcomes.

Availability of data and materials

The datasets used and/or analyzed during the current study available from the corresponding author on reasonable request.

Abbreviations

BMD:

Bone mineral density

BMI:

Body mass index

DXA:

Dual-energy X-ray absorptiometry

FLS:

Fracture Liaison Service

FRAX:

Fracture risk assessment

FRAS:

Fall risk assessment score

HAQ:

Health Assessment Questionnaire

SARC-F:

Sarcopenia risk assessment questionnaire

References

  1. Cruz-Jentoft AJ, Bahat G, Bauer J, Boirie Y, Bruyere O, Cederholm T et al (2019) Sarcopenia: revised European consensus on definition and diagnosis. Age Ageing 48:16–31.

  2. Yeung SSY, Reijnierse EM, Pham VK, Trappenburg MC, Lim WK, Meskers CGM, Maier AB (2019) Sarcopenia and its association with falls and fractures in older adults: a systematic review and meta-analysis. J Cachexia Sarcopenia Muscle 10(3):485–500. https://doi.org/10.1002/jcsm.12411

    Article  PubMed  PubMed Central  Google Scholar 

  3. Yang M, Liu Y, Zuo Y, Tang H (2019) Sarcopenia for predicting falls and hospitalization in community-dwelling older adults: EWGSOP versus EWGSOP2. Sci Rep 9:17636. https://doi.org/10.1038/s41598-019-53522-6

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  4. Angulo JC, Assar ME, Rodriguezmanas L (2016) Frailty and sarcopenia as the basis for the phenotypic manifestation of chronic diseases in older adults. Mol Aspects Med 50:1–32

    Article  PubMed  Google Scholar 

  5. Brown JC, Harhay MO, Harhay MN (2016) Sarcopenia and mortality among a population-based sample of community dwelling older adults. J Cachexia Sarcopenia Muscle 7:290–298

    Article  PubMed  Google Scholar 

  6. Landi F, Cruz-Jentoft AJ, Liperoti R et al (2013) Sarcopenia and mortality risk in frail older persons aged 80 years and older: results from ilSIRENTE study. Age Ageing 42:203–209

    Article  PubMed  Google Scholar 

  7. Zanchetta MB, Abdala R, Massari F, Rey P, Spivacow R, Miechi L, Longobardi V, Brun LR (2021) Postmenopausal women with sarcopenia have higher prevalence of falls and vertebral fractures. Medicina (B Aires) 81(1):47–53

    PubMed  Google Scholar 

  8. Shafiee G, Keshtkar A, Soltani A, Ahadi Z, Larijani B, Heshmat R (2017) Prevalence of sarcopenia in the world: a systematic review and meta-analysis of general population studies. J Diabetes Metab Disord 16:21

    Article  PubMed  PubMed Central  Google Scholar 

  9. Reijnierse EM, Trappenburg MC, Leter MJ, Blauw GJ, Sipila S, Sillanpaa E et al (2015) The impact of different diagnostic criteria on the prevalence of sarcopenia in healthy elderly participants and geriatric outpatients. Gerontology 61:491–496

    Article  PubMed  Google Scholar 

  10. Bijlsma AY, Meskers CGM, Ling CHY, Narici M, Kurrle SE, Cameron ID et al (2013) Defining sarcopenia: the impact of different diagnostic criteria on the prevalence of sarcopenia in a large middle aged cohort. Age (Dordr) 35:871–881

    Article  CAS  PubMed  Google Scholar 

  11. Beaudart C, Dawson A, Shaw SC, Harvey NC, Kanis JA, Binkley N et al (2017) Nutrition and physical activity in the prevention and treatment of sarcopenia: systematic review. Osteoporos Int 28:1817–1833 ([PMC free article] [PubMed] [Google Scholar])

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  12. Papa EV, Dong X, Hassan M (2017) Resistance training for activity limitations in older adults with skeletal muscle function deficits: a systematic review. Clin Interv Aging 12:955–961

    Article  PubMed  PubMed Central  Google Scholar 

  13. Yuan S, Larsson SC (2023) Epidemiology of sarcopenia: prevalence, risk factors, and consequences. Metabolism 144:155533

    Article  CAS  PubMed  Google Scholar 

  14. Abouzid MR, Ali K, Elkhawas I, Elshafei SM (2022) An overview of diabetes mellitus in Egypt and the significance of integrating preventive cardiology in diabetes management. Cureus 14(7):e27066. https://doi.org/10.7759/cureus.27066

    Article  PubMed  PubMed Central  Google Scholar 

  15. Egypt - Country profile. https://arabstates.unfpa.org/sites/default/files/pub-pdf/country_profile_-_egypt_27-10-2021_0.pdf. Accessed 22 Oct 2023

  16. Decline in Egyptian Smokers. https://tobaccoreporter.com/2023/06/02/decline-in-egyptian-smokers/#:~:text=The%20percentage%20of%20smokers%20in,CAPMAS)%2C%20reports%20Egyptian%20Streets. [Accessed 22 Oct 2023]

  17. Jin H, Yoo HJ, Kim YA, Lee JH, Lee Y, Kwon SH, Seo YJ, Lee SH, Koh JM, Ji Y, Do AR, Won S, Seo JH (2022) Unveiling genetic variants for age-related sarcopenia by conducting a genome-wide association study on Korean cohorts. Sci Rep 12(1):3501. https://doi.org/10.1038/s41598-022-07567-9

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  18. El Miedany Y, Mahran S, Elwakil W (2023) One musculoskeletal health: towards optimizing musculoskeletal health in Egypt—how to be a bone and muscle builder by the Egyptian Academy of bone health and metabolic bone diseases. Egypt Rheumatol Rehabil 50:33. https://doi.org/10.1186/s43166-023-00199-5

    Article  Google Scholar 

  19. Gabal HMS, Wahdan MM, Eldin WS (2020) Perceived benefits and barriers towards exercise among healthcare providers in Ain Shams University Hospitals, Egypt. J Egypt Public Health Assoc 95(1):19. https://doi.org/10.1186/s42506-020-00042-1

    Article  PubMed  PubMed Central  Google Scholar 

  20. Abdelmonem M et al (2021) Vitamin D deficiency crisis in Egypt. Am J Clin Pathol 156(Supplement_1):S36. https://doi.org/10.1093/ajcp/aqab191.071

    Article  Google Scholar 

  21. Sherief LM, Ali A, Gaballa A, Abdellatif GM, Kamal NM, Afify MR, Abdelmalek DH, El-Emari SA, Soliman ASA, Mokhtar WA (2021) Vitamin D status and healthy Egyptian adolescents: where do we stand? Medicine (Baltimore) 100(29):e26661. https://doi.org/10.1097/MD.0000000000026661

    Article  CAS  PubMed  Google Scholar 

  22. El Miedany Y, Gadallah NA, Toth M (2022) Optimizing osteoporosis management: targeting to treat — an initiative by the Egyptian Academy of bone health. Egypt Rheumatol Rehabil 49:61. https://doi.org/10.1186/s43166-022-00161-x

    Article  Google Scholar 

  23. Sharifirad G, Charkazi A, Tashi M, Shahnazi H, Bahador E (2011) Physical activity and stages of change among college students. Health Promot Perspect 1(1):71–75

    PubMed  PubMed Central  Google Scholar 

  24. Shafiee G, Keshtkar A, Soltani A et al (2017) Prevalence of sarcopenia in the world: a systematic review and meta-analysis of general population studies. J Diabetes Metab Disord 16:21. https://doi.org/10.1186/s40200-017-0302-x

    Article  PubMed  PubMed Central  Google Scholar 

  25. Burger HG, Dudley EC, Robertson DM, Dennerstein L (2002) Hormonal changes in the menopause transition. Recent Prog Horm Res 57:257–275

    Article  CAS  PubMed  Google Scholar 

  26. Juul A, Skakkebaek NE (2002) Androgens and the ageing male. Hum Reprod Update 8(5):423–433

    Article  CAS  PubMed  Google Scholar 

  27. Crepaldi G, Maggi S (2005) Sarcopenia and osteoporosis: a hazardous duet. J Endocrinol Invest 28(10 suppl):66–68

    CAS  PubMed  Google Scholar 

  28. Tarantino U, Baldi J, Scimeca M, Piccirilli E, Piccioli A, Bonanno E et al (2016) The role of sarcopenia with and without fracture. Injury 47(Suppl. 4):S3–S10. https://doi.org/10.1016/j.injury.2016.07.057

    Article  PubMed  Google Scholar 

  29. Steihaug OM, Gjesdal CG, Bogen B, Kristoffersen MH, Lien G, Ranhoff AH (2017) Sarcopenia in patients with hip fracture: a multicenter cross-sectional study. PLoS One 12:e0184780. https://doi.org/10.1371/journal.pone.0184780

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  30. Marques A, Queirós C (2018) Frailty, sarcopenia and falls. In: Hertz K, Santy-Tomlinson J (eds) Fragility fracture nursing: holistic care and management of the orthogeriatric patient. Springer, Cham, pp 15–26

    Chapter  Google Scholar 

  31. Cederholm T, Cruz-Jentoft AJ, Maggi S (2013) Sarcopenia and fragility fractures. Eur J Phys Rehabil Med 49(1):111–117

    CAS  PubMed  Google Scholar 

  32. Girgis CM (2015) Integrated therapies for osteoporosis and sarcopenia: from signaling pathways to clinical trials. Calcif Tissue Int 96:243–255. https://doi.org/10.1007/s00223-015-9956-x

    Article  CAS  PubMed  Google Scholar 

  33. Bonewald LF, Kiel DP, Clemens TL, Esser K, Orwoll ES, O’Keefe RJ et al (2013) Forum on bone and skeletal muscle interactions: summary of the proceedings of an ASBMR workshop. J Bone Miner Res 28:1857–1865. https://doi.org/10.1002/jbmr.1980

    Article  PubMed  Google Scholar 

  34. Wong RMY, Wong H, Zhang N, Chow SKH, Chau WW, Wang J, Chim YN, Leung KS, Cheung WH (2019) The relationship between sarcopenia and fragility fracture-a systematic review. Osteoporos Int 30(3):541–553. https://doi.org/10.1007/s00198-018-04828-0

    Article  CAS  PubMed  Google Scholar 

  35. Dufresne SS, Dumont NA, Bouchard P, Lavergne É, Penninger JM, Frenette (2015) Osteoprotegerin protects against muscular dystrophy. J Am J Pathol 185(4):920–926

    Article  CAS  PubMed  Google Scholar 

  36. Miedany YE, Gaafary ME, Toth M, Hegazi MO, Aroussy NE, Hassan W, Almedany S, Nasr A, Bahlas S, Galal S, Egyptian Academy of Bone Health, Metabolic Bone Diseases (2021) Is there a potential dual effect of denosumab for treatment of osteoporosis and sarcopenia? Clin Rheumatol 40(10):4225–4232. https://doi.org/10.1007/s10067-021-05757-w

    Article  PubMed  Google Scholar 

Download references

Acknowledgements

None.

Funding

This research did not receive any specific grant from funding agencies in the public, commercial, or not-for-profit sectors.

Author information

Authors and Affiliations

Authors

Contributions

All authors contributed to the study methodology, analysis, and interpretation of the data and outcomes as well as the manuscript writing, reading, and approval of the final version.

Corresponding author

Correspondence to Yasser El Miedany.

Ethics declarations

Ethics approval and consent to participate

This study is in agreement with the ethical guidelines of the Declaration of Helsinki, and it follows the ethical standards of Tanta Faculty of Medicine, with the institution’s ethics board approval number 33997/8/20. Informed written consent from all the participants was obtained. Privacy of all patients’ data was granted as there was a code number for every patient file that included all investigations.

Consent for publication

Not applicable.

Competing interests

The authors declare that Mohammed H. Abu-Zaid is an associate editor in the Egyptian Rheumatology and Rehabilitation. Waleed Hassan, Safaa Mahran, Naglaa GadAllah, and Yasser El Miedany are from editorial board of the journal.

Maha El Gaafary, Naglaa Gadallah, Walaa Elwakil, Waleed Hassan, Nihal Fathi, Samar abd Alhamed Tabra, Radwa H Shalaby, and Safaa A Mahran declare that they have no competing interests.

Additional information

Publisher’s Note

Springer Nature remains neutral with regard to jurisdictional claims in published maps and institutional affiliations.

Rights and permissions

Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article's Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article's Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/.

Reprints and permissions

About this article

Check for updates. Verify currency and authenticity via CrossMark

Cite this article

El Miedany, Y., El Gaafary, M., Gadallah, N. et al. Sarcopenia in Egypt: epidemiology of sarcopenia risk among older adults presenting with fragility fractures—an initiative by the Egyptian Academy of Bone Health. Egypt Rheumatol Rehabil 50, 62 (2023). https://doi.org/10.1186/s43166-023-00232-7

Download citation

  • Received:

  • Accepted:

  • Published:

  • DOI: https://doi.org/10.1186/s43166-023-00232-7

Keywords