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Nava, Tobia SebastianoORCID iD iconorcid.org/0000-0003-0622-9298
Publications (2 of 2) Show all publications
Zhang, Z., Boggavarapu, N. R., Muhr, L. S., Garcia-Serrango, A., Aeppli, T. R. .., Nava, T. S., . . . Zaman, F. (2026). Genomic Effects of Biomechanical Loading in Adolescent Human Growth Plate Cartilage: A Pilot Study. Cartilage, 17(3), 829-844
Open this publication in new window or tab >>Genomic Effects of Biomechanical Loading in Adolescent Human Growth Plate Cartilage: A Pilot Study
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2026 (English)In: Cartilage, ISSN 1947-6035, E-ISSN 1947-6043, Vol. 17, no 3, p. 829-844Article in journal (Refereed) Published
Abstract [en]

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.

Place, publisher, year, edition, pages
SAGE Publications, 2026
Keywords
biomechanical loading, chondrocytes, genomic, human growth plate, RNA-seq
National Category
Cell and Molecular Biology
Identifiers
urn:nbn:se:kth:diva-367295 (URN)10.1177/19476035241302954 (DOI)001373266300001 ()39655393 (PubMedID)2-s2.0-85211590558 (Scopus ID)
Note

QC 20250716

Available from: 2025-07-16 Created: 2025-07-16 Last updated: 2026-08-21Bibliographically approved
Zhang, Z., Zaman, F., Nava, T. S., Aeppli, T. R. .., Gutierrez-Farewik, E., Kulachenko, A. & Sävendahl, L. (2023). Micromechanical Loading Studies in Ex Vivo Cultured Embryonic Rat Bones Enabled by a Newly Developed Portable Loading Device. Annals of Biomedical Engineering, 51(10), 2229-2236
Open this publication in new window or tab >>Micromechanical Loading Studies in Ex Vivo Cultured Embryonic Rat Bones Enabled by a Newly Developed Portable Loading Device
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2023 (English)In: Annals of Biomedical Engineering, ISSN 0090-6964, E-ISSN 1573-9686, Vol. 51, no 10, p. 2229-2236Article in journal (Refereed) Published
Abstract [en]

Mechanical loading has been described as having the potential to affect bone growth. In order to experimentally study the potential clinical applications of mechanical loading as a novel treatment to locally modulate bone growth, there is a need to develop a portable mechanical loading device enabling studies in small bones. Existing devices are bulky and challenging to transfer within and between laboratories and animal facilities, and they do not offer user-friendly mechanical testing across both ex vivo cultured small bones and in vivo animal models. To address this, we developed a portable loading device comprised of a linear actuator fixed within a stainless-steel frame equipped with suitable structures and interfaces. The actuator, along with the supplied control system, can achieve high-precision force control within the desired force and frequency range, allowing various load application scenarios. To validate the functionality of this new device, proof-of-concept studies were performed in ex vivo cultured rat bones of varying sizes. First, very small fetal metatarsal bones were microdissected and exposed to 0.4 N loading applied at 0.77 Hz for 30 s. When bone lengths were measured after 5 days in culture, loaded bones had grown less than unloaded controls (p < 0.05). Next, fetal rat femur bones were periodically exposed to 0.4 N loading at 0.77 Hz while being cultured ex vivo for 12 days. Interestingly, this loading regimen had the opposite effect on bone growth, i.e., loaded femur bones grew significantly more than unloaded controls (p < 0.001). These findings suggest that complex relationships between longitudinal bone growth and mechanical loading can be determined using this device. We conclude that our new portable mechanical loading device allows experimental studies in small bones of varying sizes, which may facilitate further preclinical studies exploring the potential clinical applications of mechanical loading.

Place, publisher, year, edition, pages
Springer Nature, 2023
Keywords
Bone growth, Bone organ culture, Dynamic load, Femur, Metatarsal
National Category
Biomaterials Science
Identifiers
urn:nbn:se:kth:diva-338568 (URN)10.1007/s10439-023-03258-2 (DOI)001007663000001 ()37314663 (PubMedID)2-s2.0-85161878947 (Scopus ID)
Note

QC 20231107

Available from: 2023-11-07 Created: 2023-11-07 Last updated: 2023-11-07Bibliographically approved
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ORCID iD: ORCID iD iconorcid.org/0000-0003-0622-9298

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