宇宙飛行は心筋細胞の収縮力を低下させないことを確認(Space Travel Doesn’t Affect the Strength of Heart Muscle Cells, Study Finds)

ad

2026-08-12 シカゴ大学(UChicago)

米シカゴ大学の研究チームは、宇宙飛行が心筋細胞そのものの収縮能力や力学的強度に大きな悪影響を及ぼさないことを明らかにした。これまで宇宙空間での長期滞在では心血管機能の低下が報告されていたが、その原因が心筋細胞自体の機能低下によるものかは十分に分かっていなかった。研究では、宇宙飛行環境に曝露されたヒト由来心筋細胞を解析し、収縮力や力学特性、細胞機能を詳細に評価した。その結果、心筋細胞の基本的な収縮性能や強度は地上対照群と大きな差がなく、宇宙飛行による心機能変化は細胞そのものではなく、循環動態の変化や重力負荷の消失、神経・ホルモン系の調節異常など全身的要因による可能性が示唆された。今回の成果は、長期有人宇宙探査における健康リスク評価の精度向上に貢献するとともに、宇宙医学や心血管生理学の理解を深める重要な知見となる。

Side-by-side grayscale microscope views comparing heart cells from a space mouse and a ground control mouse, with labels above each panel.
An individual mouse cardiomyocyte undergoing biophysical testing.Photo by Jonathan Kirk

<関連情報>

宇宙旅行は心筋サルコメア機能に大きな影響を与えないが、免疫関連のタンパク質変化を引き起こす Space travel does not significantly impact cardiac sarcomere function but does induce immune-related proteomic changes

Henry M. Gong,Christine E. Delligatti,Hana K. Pak,Ahmed Zied,Ray Mitchell,Binu Tharakan,Travis W. Hein,David C. Zawieja,Pooneh Bagher & Jonathan A. Kirk
npj Microgravity  Published:14 July 2026
DOI:https://doi.org/10.1038/s41526-026-00636-7  Unedited version

Abstract

Space exploration is important for scientific discovery, advancing technology, and the long-term survival of humanity. However, the impacts of microgravity and cosmic radiation during space travel on human physiology are not completely understood. While microgravity results in a loss of skeletal muscle mass and function, the effect on cardiac muscle, in particular the contractile elements, is not as clear. Here, we examine the effect of spaceflight on the myocardial contractile function of skinned cardiomyocytes from mice that traveled to the International Space Station (spaceflight, N = 5) and age-matched ground controls (ground control, N = 5, and vivarium, N = 3). These experiments allow for the characterization of the mechanical properties of the sarcomere, the fundamental unit of contraction. The functional experiments showed that ~38.5 days in space does not alter force-generating capacity (Tmax), calcium sensitivity (EC50), and cooperativity of the sarcomere. The passive force and cross-sectional area (CSA) were the same between the spaceflight and ground control groups. We next performed mass spectrometry (MS) analysis, and gene ontology analysis confirmed that pathways associated with sarcomere contractility remained unchanged. However, the MS data showed that the spaceflight group exhibited immune‑related proteomic changes compared to the ground controls. Together, these results suggest that ~38.5 days of space travel does not substantially affect the intrinsic contractile state of murine cardiomyocytes.

医療・健康
ad
ad
Follow
ad
タイトルとURLをコピーしました