青少年人类生长板软骨生物力学载荷的基因组效应:一项初步研究。

IF 2.7 4区 医学 Q1 ORTHOPEDICS CARTILAGE Pub Date : 2024-12-10 DOI:10.1177/19476035241302954
Zhengpei Zhang, Nageswara Rao Boggavarapu, Laila Sara Arroyo Muhr, Ainhoa Garcia-Serrango, Tim Rj Aeppli, Tobia Sebastiano Nava, Yunhan Zhao, Elena M Gutierrez-Farewik, Artem Kulachenko, Lars Sävendahl, Farasat Zaman
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引用次数: 0

摘要

目的:生物力学载荷对人生长板软骨的基因组效应目前尚不清楚。为了解决这个问题,我们使用了罕见的人类生长板活检,这些活检来自于接受表皮成植术的儿童,并使用微加载装置将其暴露于精确控制的机械加载中。机械加载后培养活组织24小时,随后进行rna测序分析以破译基因组调控。设计:我们使用专门的微加载装置,对三名体外培养患者的人生长板软骨进行了RNA-seq分析,这些患者在30秒的时间内接受了峰值0.4 N、频率0.77 Hz的周期性机械加载。结果:基因本体分析揭示了新的数据,显示人生长板软骨中notch、催产素、紧密连接3条信号通路显著上调,溶酶体、鞘脂代谢、过氧化物酶体增殖激活受体(PPAR) 3条信号通路显著下调。此外,我们在所有三名患者的这些信号通路中发现了15个显著调节的基因。这些基因包括来自notch信号通路的PSEN2、HEY1和NCOR2;CACNB1和PPP3R2参与催产素信号传导;ACTR3C、WHAMM、ARHGEF18来自紧密结信号;ARSA, SMPD1和CD68来自溶酶体信号;来自鞘脂代谢信号的ARSA和SMPD1SLC27A4和AQP7从PPAR信号通路。此外,在两例患者样本中发现了20个显著上调基因和6个显著下调基因。结论:我们的研究首次提供了人类生长板软骨机械载荷的转录组学数据。这些发现可以潜在地为未来生理和病理骨生长条件的研究提供遗传靶点。
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Genomic Effects of Biomechanical Loading in Adolescent Human Growth Plate Cartilage: A Pilot Study.

Objective: The genomic effects of biomechanical loading on human growth plate cartilage are unknown so far. To address this, we used rare human growth plate biopsies obtained from children undergoing epiphysiodesis and exposed them to precisely controlled mechanical loading using a microloading device. The biopsies were cultured 24 hours after mechanical loading, followed by RNA-sequencing analyses to decipher the genomic regulation.

Design: We conducted RNA-seq analysis of human growth plate cartilage obtained from three patients cultured ex vivo and subjected to cyclical mechanical loading with peak 0.4 N with frequency 0.77 Hz during a 30-second duration, using a specialized microloading device.

Results: Gene ontology analysis revealed novel data showing three significantly upregulated signaling pathways, including notch, oxytocin, and tight junction, and three significantly downregulated signaling pathways, including lysosome, sphingolipid metabolism, and peroxisome proliferator-activated receptor (PPAR) in human growth plate cartilage. Moreover, we found 15 significantly regulated genes within these signaling pathways from all three patients. These genes included PSEN2, HEY1, and NCOR2 from the notch signaling; CACNB1 and PPP3R2 from the oxytocin signaling; ACTR3C, WHAMM, and ARHGEF18 from the tight junction signaling; ARSA, SMPD1, and CD68 from the lysosome signaling; ARSA and SMPD1 from the sphingolipid metabolism signaling; and SLC27A4 and AQP7 from the PPAR signaling pathway. In addition, 20 significantly upregulated genes and six significantly downregulated genes shared between two patient samples were identified.

Conclusion: Our study provides the first-ever transcriptomic data of mechanical loading of human growth plate cartilage. These findings can potentially provide genetic targets for future investigations in physiological and pathological bone growth conditions.

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来源期刊
CARTILAGE
CARTILAGE ORTHOPEDICS-
CiteScore
6.90
自引率
7.10%
发文量
80
期刊介绍: CARTILAGE publishes articles related to the musculoskeletal system with particular attention to cartilage repair, development, function, degeneration, transplantation, and rehabilitation. The journal is a forum for the exchange of ideas for the many types of researchers and clinicians involved in cartilage biology and repair. A primary objective of CARTILAGE is to foster the cross-fertilization of the findings between clinical and basic sciences throughout the various disciplines involved in cartilage repair. The journal publishes full length original manuscripts on all types of cartilage including articular, nasal, auricular, tracheal/bronchial, and intervertebral disc fibrocartilage. Manuscripts on clinical and laboratory research are welcome. Review articles, editorials, and letters are also encouraged. The ICRS envisages CARTILAGE as a forum for the exchange of knowledge among clinicians, scientists, patients, and researchers. The International Cartilage Repair Society (ICRS) is dedicated to promotion, encouragement, and distribution of fundamental and applied research of cartilage in order to permit a better knowledge of function and dysfunction of articular cartilage and its repair.
期刊最新文献
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