Glucose uptake and growth of glucose-limited chemostat cultures of Aspergillus niger and a disruptant lacking MstA, a high-affinity glucose transporter

Microbiology (Reading). 2007 Jun;153(Pt 6):1963-1973. doi: 10.1099/mic.0.2006/005090-0.

Abstract

This is a study of high-affinity glucose uptake in Aspergillus niger and the effect of disruption of a high-affinity monosaccharide-transporter gene, mstA. The substrate saturation constant (K(s)) of a reference strain was about 15 microM in glucose-limited chemostat culture. Disruption of mstA resulted in a two- to fivefold reduction in affinity for glucose and led to expression of a low-affinity glucose transport gene, mstC, at high dilution rate. The effect of mstA disruption was more subtle at low and intermediate dilution rates, pointing to some degree of functional redundancy in the high-affinity uptake system of A. niger. The mstA disruptant and a reference strain were cultivated in glucose-limited chemostat cultures at low, intermediate and high dilution rate (D=0.07 h(-1), 0.14 h(-1) and 0.20 h(-1)). Mycelium harvested from steady-state cultures was subjected to glucose uptake assays, and analysed for expression of mstA and two other transporter genes, mstC and mstF. The capacity for glucose uptake (v(max)) of both strains was significantly reduced at low dilution rate. The glucose uptake assays revealed complex uptake kinetics. This impeded accurate determination of maximum specific uptake rates (v(max)) and apparent affinity constants ( ) at intermediate and high dilution rate. Two high-affinity glucose transporter genes, mstA and mstF, were expressed at all three dilution rates in chemostat cultures, in contrast to batch culture, where only mstC was expressed. Expression patterns of the three transporter genes suggested differential regulation and functionality of their products.

MeSH terms

  • Aspergillus niger / genetics
  • Aspergillus niger / growth & development*
  • Aspergillus niger / metabolism*
  • Biological Transport
  • Blotting, Northern
  • Fungal Proteins / genetics
  • Fungal Proteins / physiology*
  • Gene Deletion*
  • Gene Expression Regulation, Fungal
  • Glucose / metabolism*
  • Glucose Transport Proteins, Facilitative / genetics
  • Glucose Transport Proteins, Facilitative / physiology*
  • Kinetics
  • RNA, Fungal / biosynthesis
  • RNA, Fungal / genetics
  • RNA, Messenger / biosynthesis
  • RNA, Messenger / genetics

Substances

  • Fungal Proteins
  • Glucose Transport Proteins, Facilitative
  • RNA, Fungal
  • RNA, Messenger
  • Glucose