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[Processes of plant colonization by Methylobacterium strains and some bacterial properties ]

V A Romanovskaia1, S M Stoliar, Iu R Malashenko

  • 1Zabolotnyi Institute of Microbiology and Virology, National Academy of Sciences of Ukraine, ul. Zabolotnogo 154, Kiev, 252627 Ukraine.

Mikrobiologiia
|June 2, 2001
PubMed

Insights

Pink-pigmented facultative methylotrophic bacteria (PPFMB) colonize maize leaves when applied directly, not from soil. These bacteria, in mixed cultures, protect plants from pathogens and frost damage.

Area of Science:

  • Microbial ecology
  • Plant-microbe interactions
  • Bacteriology

Context:

  • Pink-pigmented facultative methylotrophic bacteria (PPFMB) are vital inhabitants of the plant phyllosphere.
  • The genus Methylobacterium comprises key PPFMB species.
  • Maize (Zea mays) serves as a model organism for studying plant-microbe dynamics.

Purpose:

  • To investigate plant colonization by PPFMB, specifically Methylobacterium species.
  • To identify beneficial properties of PPFMB for plant health.
  • To assess the role of PPFMB in plant protection against environmental stressors.

Summary:

  • A marked strain, Methylobacterium mesophilicum APR-8 (pULB113), was used to track colonization of maize leaves.
  • Leaf surface application led to successful colonization and increased bacterial populations with plant growth.
  • Colonization did not occur from soil inoculation during seed germination, suggesting aerial transfer of soil particles.
  • PPFMB monocultures showed no antagonism, but mixed cultures with Methylobacterium spp. inhibited phytopathogenic bacteria.
  • Methylobacterium strains did not catalyze ice nucleation, indicating no frost injury risk.

Impact:

  • Methylobacterium species can colonize plant leaves, with colonization efficiency influenced by application method.
  • Mixed cultures of Methylobacterium exhibit potential for biological control of plant diseases.
  • Methylobacterium strains do not induce frost injury, suggesting a protective role against cold stress.
  • These findings highlight the potential of Methylobacterium genus for enhancing plant resilience to environmental challenges.

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