Kern V D
Department of Plant Biology, Ohio State University, Columbus, USA.
Adv Space Res. 1999;24(6):697-706. doi: 10.1016/s0273-1177(99)00401-9.
In order to achieve perfect positioning of their lamellae for spore dispersal, fruiting bodies of higher fungi rely on the omnipresent force gravity. Only accurate negatively gravitropic orientation of the fruiting body cap will guarantee successful reproduction. A spaceflight experiment during the STS-55 Spacelab mission in 1993 confirmed that the factor gravity is employed for spatial orientation. Most likely every hypha in the transition zone between the stipe and the cap region is capable of sensing gravity. Sensing presumably involves slight sedimentation of nuclei which subsequently causes deformation of the net-like arrangement of F-actin filament strands. Hyphal elongation is probably driven by hormone-controlled activation and redistribution of vesicle traffic and vesicle incorporation into the vacuoles and cell walls to subsequently cause increased water uptake and turgor pressure. Stipe bending is achieved by way of differential growth of the flanks of the upper-most stipe region. After reorientation to a horizontal position, elongation of the upper flank hyphae decreases 40% while elongation of the lower flank slightly increases. On the cellular level gravity-stimulated vesicle accumulation was observed in hyphae of the lower flank.
为了使它们的菌褶实现完美定位以进行孢子传播,高等真菌的子实体依赖无处不在的重力。只有子实体菌盖精确的负向重力定向才能确保成功繁殖。1993年STS - 55太空实验室任务期间的一项太空飞行实验证实,重力因素被用于空间定向。很可能菌柄和菌盖区域之间过渡区的每一根菌丝都能够感知重力。这种感知大概涉及细胞核的轻微沉降,随后导致F - 肌动蛋白丝链网状排列的变形。菌丝伸长可能是由激素控制的囊泡运输的激活和重新分布以及囊泡并入液泡和细胞壁,随后导致水分吸收增加和膨压升高所驱动。菌柄弯曲是通过最上部菌柄区域两侧的差异生长实现的。重新定向到水平位置后,上部侧翼菌丝的伸长减少40%,而下部侧翼的伸长略有增加。在细胞水平上,在下部侧翼的菌丝中观察到重力刺激的囊泡积累。