pH-dependent modulation of alkaline phosphatase activity in Serratia marcescens

A R Bhatti1, A Alvi, Satish Walia

  • 1Defence Research Establishment Suffield, Box 4000, Medicine Hat, Alberta, Canada, T1A 8K6.

Current Microbiology
|August 23, 2002
PubMed

Insights

Serratia marcescens alkaline phosphatases (APases) show differential pH stability. Inducible APase (IAPase) activity is largely recoverable after acid exposure, unlike constitutive APase (CAPase).

Area of Science:

  • Microbiology
  • Enzymology
  • Biochemistry

Background:

  • Serratia marcescens is an opportunistic pathogen causing various infections.
  • Alkaline phosphatase (APase) is crucial for pathogen survival and adaptation.
  • S. marcescens synthesizes constitutive (CAPase) and inducible (IAPase) APases under low phosphate conditions.

Purpose of the Study:

  • To investigate the impact of low phosphate and acidic pH on S. marcescens APase activity.
  • To determine the reversibility of APase inactivation at acidic pH.
  • To explore the influence of protein concentration on APase pH-dependent activity.

Main Methods:

  • Culturing S. marcescens in low phosphate medium.
  • Assessing APase activity at varying pH levels (acidic and alkaline).
  • Incubating enzymes at 0°C and measuring activity recovery after pH shift.
  • Analyzing the effect of protein concentration on enzyme stability and reactivation.

Main Results:

  • Both CAPase and IAPase lost activity completely at pH 2.3 within 10 minutes at 0°C.
  • IAPase isoenzymes showed significant activity recovery (60-72%) upon shifting to pH 7.8.
  • CAPase activity recovery was minimal (5%) after similar pH shift.
  • Higher protein concentration accelerated IAPase inactivation at acidic pH but slowed reactivation at alkaline pH.

Conclusions:

  • IAPase exhibits greater pH-dependent reversible activity compared to CAPase.
  • The distinct behaviors suggest different genetic origins for CAPase and IAPase.
  • These findings contribute to understanding S. marcescens virulence mechanisms and APase enzyme properties.

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