scholarly journals [.ALPHA.-32P]NTP Binding to Diphtheria Toxin and Light Signal Transmission to the Toxin through a Microsomal Fraction of Neurospora crassa.

CYTOLOGIA ◽  
1993 ◽  
Vol 58 (1) ◽  
pp. 99-105 ◽  
Author(s):  
Kohji Hasunuma ◽  
Kazushi Oda
2012 ◽  
Vol 2012 ◽  
pp. 1-13 ◽  
Author(s):  
Tatiana A. Belozerskaya ◽  
Natalia N. Gessler ◽  
Elena P. Isakova ◽  
Yulia I. Deryabina

In the ascomycete fungus Neurospora crassa blue-violet light controls the expression of genes responsible for differentiation of reproductive structures, synthesis of secondary metabolites, and the circadian oscillator activity. A major photoreceptor in Neurospora cells is WCC, a heterodimeric complex formed by the PAS-domain-containing polypeptides WC-1 and WC-2, the products of genes white collar-1 and white collar-2. The photosignal transduction is started by photochemical activity of an excited FAD molecule noncovalently bound by the LOV domain (a specialized variant of the PAS domain). The presence of zinc fingers (the GATA-recognizing sequences) in both WC-1 and WC-2 proteins suggests that they might function as transcription factors. However, a critical analysis of the phototransduction mechanism considers the existence of residual light responses upon absence of WCC or its homologs in fungi. The data presented point at endogenous ROS generated by a photon stimulus as an alternative input to pass on light signals to downstream targets.


2012 ◽  
Vol 23 (19) ◽  
pp. 3863-3872 ◽  
Author(s):  
Andrea Brenna ◽  
Benedetto Grimaldi ◽  
Patrizia Filetici ◽  
Paola Ballario

In Neurospora crassa and other filamentous fungi, light-dependent–specific phenomena are regulated by transcription factors WC-1 and WC-2. In addition to its transcriptional activity, WC-1 is able to directly sense light stimuli through a LOV sensor domain. Its location in the nucleus and heterodimerization with WC-2, together with the presence of a zinc-finger DNA-binding domain and an environmental sensor domain, all resemble the functional evolutionary architecture adopted by vertebrate nuclear receptors (NRs). Here we describe a scenario in which WC-1 represents a functional orthologue of NRs and acts through association with the chromatin-modifying coactivator NGF-1, which encodes a homologue of the yeast Gcn5p acetyltransferase. To support this view, we show a direct association between WC-1 and NGF-1 that depends on a WC-1 region containing a conserved functional LXXLL motif, a signature previously described as being an exclusive feature of NR/coactivator interaction. Our data suggest that a WC-1/NGF-1 complex is preassembled in the dark on light-inducible promoters and that, after exposure to light stimulation, NGF-1–associated HAT activity leads to histone H3 acetylation and transcriptional activation. Finally, we provide evidence for a NGF-1–independent acetylated form of WC-1. Overall our data indicate that Neurospora and higher eukaryotes share a common mechanism for the signal transduction of environmental stimuli.


1997 ◽  
Vol 5 (11) ◽  
pp. 458-462 ◽  
Author(s):  
Paola Ballario ◽  
Giuseppe Macino

1997 ◽  
Vol 9 (1) ◽  
pp. 13-22
Author(s):  
Kohji HASUNUMA ◽  
Yasunobu OGURA ◽  
Kazushi ODA ◽  
Naoto YABE

e-Neuroforum ◽  
2010 ◽  
Vol 16 (3) ◽  
Author(s):  
A. Gießl ◽  
H. Regus-Leidig ◽  
J. H. Brandstätter

AbstractVision begins in highly specialized light-sensing neurons, the rod and cone photoreceptors. Their task is to absorb photons, transduce the physical stimulus into neuronal sig­nals, transmit the signals to the parallel signal processing pathways of the subsequent reti­nal network with the highest possible fidelity and continuously adapt to changes in stim­ulus intensities. If you imagine a pitch-black night with only a few photons hitting the ret­ina and being absorbed by the photoreceptors and a bright sunny day with the photore­ceptors being bombarded by billions of photons, you realize that a photoreceptor faces two fundamental challenges: it has to detect the light signal with the greatest sensitivity, e.g. a single photon leads to a change in the membrane potential of a rod photoreceptor and, at the same time, encode light intensities covering a broad dynamic range of sev­eral orders of magnitude. To fulfill these demands, photoreceptors have developed separate, structurally and functionally specialized compartments, which are the topic of this article: the outer segment for signal transduc­tion and the terminal with its highly complex ribbon synapse for signal transmission.


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