Alpha-Ketoisocaproate Attenuates Muscle Atrophy in Cancer Cachexia Models

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초록

Background: Cancer-associated cachexia (CAC) is a multifactorial syndrome characterised by progressive loss of muscle mass with limited Food and Drug Administration treatments. Although emerging evidence suggests that l-leucine and β-hydroxy-β-methyl butyrate (HMB) have potential for treating CAC, the role of α-ketoisocaproate (KIC), a metabolite of l-leucine, remains unclear. Therefore, this study explored the use of KIC as a therapeutic agent for CAC-induced muscle atrophy by targeting myostatin. Methods: We evaluated the effect of KIC on muscle atrophy using BALB/c mice and C2C12 myotubes as models of C26- and 4T1-induced CAC. Male and female mice were injected with C26 and 4T1 cells, respectively. Grip strength was measured weekly, and mice were sacrificed 4 weeks post-injection for muscle collection. C2C12 myotubes were treated with conditioned media (CM) derived from C26 or 4T1 cells. Results: KIC suppressed mRNA expression of myostatin, a key regulator of muscle atrophy, more effectively than did l-leucine (−26.37 ± 4.11%, p < 0.01). KIC enhanced protein turnover in C2C12 myotubes and maintained 50% cell viability at high concentrations (KIC: 4.68 mM, HMB: 3.11 mM). Following CM treatment, KIC suppressed MuRF1 and MAFbx expression in a myostatin-dependent manner, thereby reducing their polyubiquitination. KIC restored Akt-FoxO3a phosphorylation, leading to improved myotube diameter (+63.8 ± 25.71%, p < 0.05) and fusion index (+51.9 ± 22.6%, p < 0.05). Immunofluorescence and nuclear fractionation revealed that KIC reduced FoxO3a nuclear accumulation. CM reduced p-Akt–FoxO3a interaction, which was rescued by KIC. In vivo, KIC administration increased body weight (11.11 ± 8.53%), grip strength (24.76 ± 10.58%), and skeletal muscle mass (p < 0.001) in C26 tumour-bearing mice. Protein expression of myostatin in the tibialis anterior (TA) muscle (−23.57 ± 12.22%, p < 0.05) and serum (−52.11 ± 3.56%, p < 0.001) was lower in KIC-treated mice (n = 12) compared with that in the controls. KIC increased the mean fibre cross-sectional area in TA (24.51 ± 14.14%, p < 0.01). In 4T1 tumour-bearing mice, KIC improved body weight (13.10 ± 10.76%) and grip strength (7.42 ± 4.33%) (p < 0.001, n = 10). Serum myostatin levels (−57.43 ± 9.46%, p < 0.001) and skeletal muscle weight were reduced in KIC-treated mice (n = 10). Conclusion: Our findings demonstrate that KIC improves muscle function in CAC-induced muscle atrophy by regulating myostatin expression in skeletal muscle via the Akt–FoxO3a pathway. Thus, KIC has been proposed as a potential therapeutic agent against CAC. © 2025 Elsevier B.V., All rights reserved.

키워드

Akt; Alpha-ketoisocaproate; Cancer Cachexia; Foxo3a; Myostatin; Protein Turnover; 2 Oxoisocaproic Acid; Leucine; Myostatin; Protein Kinase B; Alpha-ketoisocaproic Acid; Forkhead Box Protein O3; Keto Acids; Myostatin; Tripartite Motif Proteins; 2 Oxoisocaproic Acid; Atrogin 1; Leucine; Muscle Ring Finger 1 Protein; Myostatin; Protein Kinase B; Transcription Factor Fkhrl1; Alpha-ketoisocaproic Acid; Oxoacid; Tripartite Motif Protein; 4t1 Cell Line; Akt Signaling; Animal Cell; Animal Experiment; Animal Model; Animal Tissue; Article; Body Weight; Breast Cancer; C2c12 Cell Line; Cachexia; Cell Fractionation; Cell Fusion; Cell Nucleus; Cell Viability; Concentration (parameter); Controlled Study; Drug Targeting; Female; Grip Strength; Human; Human Cell; Immunofluorescence; In Vitro Study; In Vivo Study; Male; Mc-26 Cell Line; Mouse; Mrna Expression Level; Muscle Atrophy; Muscle Cell; Muscle Hypertrophy; Muscle Mass; Muscle Weight; Myotube; Nonhuman; Nuclear Export; Protein Blood Level; Protein Expression; Protein Metabolism; Protein Phosphorylation; Protein Protein Interaction; Sectional Anatomy; Skeletal Muscle; Tibialis Anterior Muscle; Ubiquitination; Animal; Bagg Albino Mouse; Complication; Disease Model; Drug Effect; Drug Therapy; Etiology; Genetics; Metabolism; Neoplasm; Pathology; Skeletal Muscle Cell; Tumor Cell Line; Animals; Cachexia; Cell Line, Tumor; Disease Models, Animal; Female; Forkhead Box Protein O3; Humans; Keto Acids; Male; Mice; Mice, Inbred Balb C; Muscle Fibers, Skeletal; Muscle, Skeletal; Muscular Atrophy; Myostatin; Neoplasms; Tripartite Motif Proteins; ACID; MYOSTATIN; LEUCINE; TRANSPORTER; CELLS
제목
Alpha-Ketoisocaproate Attenuates Muscle Atrophy in Cancer Cachexia Models
저자
Lim, Pooreum; Woo, Sang-woo; Han, Jihye; Lee, Young-lim; Lim, Jin-ju; Kang, Yeonghoon; Moon, Ji-wook; Nam, Jeong-min; Kim, Jeong-hyeon; Kim, Donghun; Shim, Jae Ho; Kim, Hyeon Soo
DOI
10.1002/jcsm.70044
발행일
2025-08
유형
Article
저널명
Journal of Cachexia, Sarcopenia and Muscle
권
16
호
4