Abstract
Macroconidiation in Neurospora crassa is influenced by a number of environmental cues, including the nutritional status of the growing organism. Conidia formation is normally observed when the fungus is exposed to air. However, carbon limitation can induce conidiation in mycclia submerged in an aerated liquid medium. A mutant was previously isolated that could conidiate in submerged culture without imposing nutrient limitation and the gene responsible for this phenotype (rco-3) has now been cloned. RCO3 exhibits sequence similarity to members of the sugar transporter gene superfamily, with greatest similarity to glucose transporters of yeast. Consistent with this structural similarity, we find that glucose transport activity is altered in the mutant. However, growth of the mutant in media containing alternate carbon sources does not suppress conidiation in submerged culture. The properties of the mutant suggest that RCO3 is required for expression of glucose transport activity, glucose regulation of gene expression, and general carbon repression of development.
MeSH Terms
Alleles
Amino Acid Sequence
Base Sequence
Biological Transport
Blotting, Northern
Cloning, Molecular
Culture Media
Gene Expression Regulation, Fungal/genetics
Genes, Fungal
Glucose/metabolism
Molecular Sequence Data
Monosaccharide Transport Proteins/chemistry,genetics
Mutation
Neurospora crassa/chemistry,genetics,physiology
Phenotype
RNA, Messenger/genetics,metabolism
Sequence Alignment
Sequence Analysis, DNA
Spores, Fungal
Chemicals
Culture Media
Monosaccharide Transport Proteins
RNA, Messenger
Glucose
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Madi L
Department of Plant Pathology and Microbiology, Texas A & M University, College Station 77843, USA.
McBride S A
Bailey L A
Ebbole D J
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