Clinical and laboratory predictors of postoperative pain after arthroscopic anterior cruciate ligament reconstruction in patients with obesity
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Keywords

orthopedics and traumatology
anterior cruciate ligament
obesity
postoperative pain
VAS
predictors

How to Cite

Drokin, A. (2026). Clinical and laboratory predictors of postoperative pain after arthroscopic anterior cruciate ligament reconstruction in patients with obesity. Medicine Today and Tomorrow, 95(1). https://doi.org/10.35339/msz.2026.95.1.dav

Abstract

In press

Background. Anterior Cruciate Ligament (ACL) injury is one of the leading causes of knee instability and reduced functional activity. The results of arthroscopic ACL reconstruction depend largely on the patient's metabolic status.

Aim. To determine the clinical and laboratory characteristics of patients with isolated ACL injury and obesity before arthroscopic reconstruction and to identify factors associated with increased pain intensity at 2 months after surgery in this patient population.

Materials and Methods. This single-center prospective controlled non-randomized study included 90 consecutively enrolled patients with isolated ACL injury of the knee joint who were treated in the Department of Traumatology of the Regional Clinical Hospital, a Municipal Nonprofit Enterprise of the Kharkiv Regional Council, between 2022 and 2024. The groups were formed according to BMI: the main group consisted of 38 patients with obesity (BMI ≥30 kg/m²), and the control group included 52 patients without obesity (Body Mass Index (BMI) <30 kg/m²). The following parameters were assessed: Total Cholesterol (TC), Low-Density Lipoproteins (LDL), Very-Low-Density Lipoproteins (VLDL), High-Density Lipoproteins (HDL), TriGlycerides (TG), beta-LipoProteins (β-LP), and the Atherogenic Index (AI). Pain intensity at 2 months after arthroscopic ACL reconstruction was assessed using the Visual Analog Scale (VAS), and associated clinical and laboratory factors were analyzed. Statistical analysis was performed using nonparametric methods and multiple linear regression.

Research Ethics. All patients provided informed consent for participation in the study. The study was conducted in accordance with the Nuremberg Code and the World Medical Association Declaration of Helsinki (1964–2024). The study protocol was approved by the Bioethics Committee of Kharkiv National Medical University (Protocol No 4 of 01.04.2026).

Results. The obesity group had significantly higher levels of TC, LDL, VLDL, TG, β-LP, and AI, as well as lower HDL levels (p≤0.001). Obesity (β=0.320; p=0.004) and a higher preoperative VAS score (β=0.237; p=0.001) were independently associated with greater pain intensity at 2 months after ACL reconstruction.

Conclusions. The most clinically significant independent predictors of persistent pain at 2 months after arthroscopic ACL reconstruction were obesity and a higher preoperative pain level.

Keywords: orthopedics and traumatology, anterior cruciate ligament, obesity, postoperative pain, VAS, predictors.

https://doi.org/10.35339/msz.2026.95.1.dav
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References

Shankar DS, Vasavada KD, Avila A, DeClouette B, Aziz H, Strauss EJ, et al. Acceptable clinical outcomes despite high reoperation rate at minimum 12-month follow-up after concomitant arthroscopically assisted anterior cruciate ligament reconstruction and medial meniscal allograft transplantation. Knee Surg Relat Res. 2023;35(1):2. DOI: 10.1186/s43019-023-00176-4. PMID: 36627709.

Morgan AM, Bi AS, Kaplan DJ, Alaia MJ, Strauss EJ, Jazrawi LM. An eponymous history of the anterolateral ligament complex of the knee. Knee Surg Relat Res. 2022;34:45. DOI: 10.1186/s43019-022-00172-0. PMID:36527151.

Sundararajan SR, Ramakanth R, Jha AK, Rajasekaran S. Outside-in technique versus inside-out semitendinosus graft harvest technique in ACL reconstruction: a randomized controlled trial. Knee Surg Relat Res. 2022;34(1):16. DOI: 10.1186/s43019-022-00144-4. PMID: 35346395.

Todor A. Advances in anterior cruciate ligament injury, reconstruction and rehabilitation. Medicina (Kaunas). 2024;60(1):136. DOI: 10.3390/medicina60010136. PMID: 38256396.

Montalvo AM, Schneider DK, Webster KE, Yut L, Galloway MT, Heidt RS Jr et al. Anterior cruciate ligament injury risk in sport: a systematic review and meta-analysis of injury incidence by sex and sport classification. J Athl Train. 2019;54(5):472-82. DOI: 10.4085/1062-6050-407-16. PMID: 31009238.

Sanders TL, Maradit Kremers H, Bryan AJ, Larson DR, Dahm DL, Levy BA et al. Incidence of anterior cruciate ligament tears and reconstruction: a 21-year population-based study. Am J Sports Med. 2016;44(6):1502-7. DOI: 10.1177/0363546516629944. PMID: 26920430.

Brophy RH, Schafer KA, Knapik DM, Motley J, Haas A, Matava MJ, et al. Changes in dynamic postural stability after ACL reconstruction: results over 2 years of follow-up. Orthop J Sports Med. 2022;10(6):23259671221098988. DOI: 10.1177/23259671221098989. PMID: 35722181.

Bohl DD, Ondeck NT, Darrith B, Hannon CP, Fillingham YA, Della Valle CJ. Impact of operative time on adverse events following primary total joint arthroplasty. J Arthroplasty. 2018;33(7):2256-62. DOI: 10.1016/j.arth.2018.02.037. PMID: 29551302.

Kim DY, Seo YC, Kim CW, Lee CR, Jung SH. Factors affecting range of motion following two-stage revision arthroplasty for chronic periprosthetic knee infection. Knee Surg Relat Res. 2022;34(1):33. DOI: 10.1186/s43019-022-00162-2. PMID: 35850706.

Lim S, Lee SS, Oh J, Lee DH. Weight is a predictor of delayed operation time in primary isolated anterior cruciate ligament reconstruction. Biomedicines. 2023;11(8):2137. DOI: 10.3390/biomedicines11082137. PMID: 37626634.

Fang Z, Liu W. Obesity-associated outcomes after ACL reconstruction: a propensity-score-matched analysis of the US Nationwide Inpatient Sample 2005-2018. J Orthop Traumatol. 2024;25(1):36. DOI: 10.1186/s10195-024-00779-x. PMID: 39048813.

Byun J, Yoon HK, Oh HC, Youk T, Ha JW, Kang S, Park SH. Relationship between revision rate, osteoarthritis, and obesity for ACL reconstruction: a nationwide retrospective cohort study. Orthop J Sports Med. 2024;12(8):23259671241266597. DOI: 10.1177/23259671241266597. PMID: 39176266.

Ninkovic S, Manojlovic M, Roklicer R, Bianco A, Carraro A, Matic R et al. The influence of body mass index on physical activity engagement following anterior cruciate ligament reconstruction: a systematic literature review. Heliyon. 2023;9(12):e22994. DOI: 10.1016/j.heliyon.2023.e22994. PMID: 38125506.

Lustig MA, Hazzard S, Fitzgerald B, Stovall N, Asnis P. Body mass index between 15 and 30 does not influence patient-reported outcomes after anterior cruciate ligament surgery using a 10-mm-diameter bone-tendon-bone graft. Arthrosc Sports Med Rehabil. 2024;6(3):100925. DOI: 10.1016/j.asmr.2024.100925. PMID: 39006775.

Buck AN, Moore SR, Smith-Ryan AE, Schwartz TA, Nelson AE, Davis-Wilson H et al. 348 - Body composition, not body mass index, associates with patient-reported outcomes, quadriceps strength, and physical function linked to early knee osteoarthritis-related outcomes after anterior cruciate ligament reconstruction. Osteoarthritis Cartilage. 2024;32(Suppl_1):S248-9. DOI: 10.1016/j.joca.2024.02.360.

Wang YJ, Zhang JC, Zhang YZ, Liu YH. Assessment of functional prognosis of anterior cruciate ligament reconstruction in athletes based on a body shape index. World J Clin Cases. 2023;11(19):4567-78. DOI: 10.12998/wjcc.v11.i19.4567. PMID: 37469737.

Garcia SA, White MS, Gallegos J, Balza I, Kahan S, Palmieri-Smith RM. Associations between body mass index, gait biomechanics, and in vivo cartilage function after exercise in those with anterior cruciate ligament reconstruction. Am J Sports Med. 2024;52(13):3295-305. DOI: 10.1177/03635465241281333. PMID: 39503724.

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