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1
Threshold and adaptation in Phycomyces. Their interrelation and regulation by light.毛霉中的阈值与适应性。它们的相互关系以及光对其的调节
J Gen Physiol. 1984 Jul;84(1):119-32. doi: 10.1085/jgp.84.1.119.
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引用本文的文献

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Light reception of Phycomyces revisited: several white collar proteins confer blue- and red-light sensitivity and control dynamic range and adaptation.再探藻菌的光受体:几种白色领结蛋白赋予其对蓝、红光的敏感性,并控制动态范围和适应能力。
Photochem Photobiol Sci. 2024 Aug;23(8):1587-1607. doi: 10.1007/s43630-024-00604-8. Epub 2024 Jul 13.
2
Analysis of microsomal flavoproteins from Phycomyces sporangiophores: Candidates for the blue-light photoreceptor.从 Phycomyces 孢子梗中分析微粒体黄素蛋白:候选蓝光光受体。
Planta. 1985 Apr;163(4):506-16. doi: 10.1007/BF00392708.
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Phycomyces: Phototropism and light-growth response to pulse stimuli.水玉霉:向光性和对脉冲刺激的光生长反应。
Planta. 1985 Sep;165(4):538-47. doi: 10.1007/BF00398101.
4
Action spectra of the light-growth response of Phycomyces.《藻菌的光生长反应的作用光谱》。
Planta. 1991 Jul;184(4):498-505. doi: 10.1007/BF00197898.
5
System analysis of Phycomyces light-growth response. Photoreceptor and hypertropic mutants.毛霉属光生长反应的系统分析。光感受器和向性突变体。
Biophys J. 1986 Oct;50(4):661-8. doi: 10.1016/S0006-3495(86)83506-8.
6
Blue-light reception in Phycomyces phototropism: evidence for two photosystems operating in low- and high-intensity ranges.毛霉向光性中的蓝光接收:两个光系统在低强度和高强度范围内起作用的证据。
Proc Natl Acad Sci U S A. 1987 Jan;84(1):104-8. doi: 10.1073/pnas.84.1.104.

毛霉中的阈值与适应性。它们的相互关系以及光对其的调节

Threshold and adaptation in Phycomyces. Their interrelation and regulation by light.

作者信息

Galland P, Russo V E

出版信息

J Gen Physiol. 1984 Jul;84(1):119-32. doi: 10.1085/jgp.84.1.119.

DOI:10.1085/jgp.84.1.119
PMID:6747598
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2228728/
Abstract

The absolute light sensitivity of Phycomyces sporangiophores was determined by analyzing the intensity dependence of the phototropic bending rate and of the light growth and dark growth responses to step changes of the intensity. We found that the different methods give approximately the same results for the wild-type strain, as well as for several behavioral mutants with defects in the genes madA, madB, and madC. A crucial factor in the determination of thresholds is the light intensity at which the strains grow during the 4 d after inoculation and prior to the experiment. When the wild-type strain grows in the dark, its threshold for the bending rate is 10(-9) W X m-2, compared with 2 X 10(-7) W X m-2 when it is grown under continuous illumination. Further, the maximal bending rate is twice as high in dark-grown strains. This phenomenon is further complicated by the fact that the diameter and growth rate of the sporangiophores also depend on the illumination conditions prior to the experiment: light-grown sporangiophores have an increased diameter and an increased growth rate compared with dark-grown ones. Some of the behavioral mutants, however, are indifferent to this form of light control. Another factor that is controlled by the growth conditions is adaptation: the kinetics of dark adaptation are slower in light-grown sporangiophores than in dark-grown ones. We found empirically a positive correlation between the slower dark adaptation constant and the threshold of the bending rate, which shows that the two underlying phenomena are functionally related.

摘要

通过分析向光弯曲速率以及光生长和暗生长对强度阶跃变化的响应的强度依赖性,确定了毛霉属孢子囊柄的绝对光敏感性。我们发现,对于野生型菌株以及几个在madA、madB和madC基因中有缺陷的行为突变体,不同的方法给出的结果大致相同。确定阈值的一个关键因素是菌株在接种后4天且在实验前生长时的光照强度。当野生型菌株在黑暗中生长时,其弯曲速率的阈值为10^(-9) W·m^(-2),而在连续光照下生长时为2×10^(-7) W·m^(-2)。此外,在黑暗中生长的菌株的最大弯曲速率是其两倍。孢子囊柄的直径和生长速率也取决于实验前的光照条件,这一事实使这种现象更加复杂:与在黑暗中生长的孢子囊柄相比,在光照下生长的孢子囊柄直径更大且生长速率更高。然而,一些行为突变体对这种光控形式不敏感。另一个受生长条件控制的因素是适应性:在光照下生长的孢子囊柄的暗适应动力学比在黑暗中生长的孢子囊柄慢。我们通过实验发现暗适应常数较慢与弯曲速率阈值之间存在正相关,这表明这两种潜在现象在功能上是相关的。