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Simplified Whole Body Plethysmography to Characterize Lung Function During Respiratory Melioidosis
Published on: February 24, 2023
Particle-size dependent effects in the Balb/c murine model of inhalational melioidosis
Richard J Thomas1, C Davies, A Nunez
1Department of Biomedical Sciences, Defence Science and Technology Laboratory, Salisbury Wiltshire, UK. rjthomas@dstl.gov.uk
Abstract:
Deposition of Burkholderia pseudomallei within either the lungs or nasal passages of the Balb/c murine model resulted in different infection kinetics. The infection resulting from the inhalation of B. pseudomallei within a 12 μm particle aerosol was prolonged compared to a 1 μm particle aerosol with a mean time-to-death (MTD) of 174.7 ± 14.9 h and 73.8 ± 11.3 h, respectively. Inhalation of B. pseudomallei within 1 μm or 12 μm particle aerosols resulted in a median lethal dose (MLD) of 4 and 12 cfu, respectively. The 12 μm particle inhalational infection was characterized by a marked involvement of the nasal mucosa and extension of bacterial colonization and inflammatory lesions from the olfactory epithelium through the olfactory nerves (or tracts) to the olfactory bulb (100%), culminating in abscessation of the brain (33%). Initial involvement of the upper respiratory tract lymphoid tissues (nasal-associated lymphoid tissue (NALT) and cervical lymph nodes) was observed in both the 1 and 12 μm particle inhalational infections (80-85%). Necrotising alveolitis and bronchiolitis were evident in both inhalational infections, however, lung pathology was greater after inhalation of the 1 μm particle aerosol with pronounced involvement of the mediastinal lymph node (50%). Terminal disease was characterized by bacteraemia in both inhalational infections with dissemination to the spleen, liver, kidneys, and thymus. Treatment with co-trimoxazole was more effective than treatment with doxycycline irrespective of the size of the particles inhaled. Doxycycline was more effective against the 12 μm particle inhalational infection as evidenced by increased time to death. However, both treatment regimes exhibited significant relapse when therapy was discontinued with massive enlargement and abscessation of the lungs, spleen, and cervical lymph nodes observed.
Insights
Particle size impacts Burkholderia pseudomallei infection kinetics in mice. Larger particles (12 μm) caused prolonged infection and brain abscesses, while smaller particles (1 μm) led to greater lung pathology. Co-trimoxazole was the more effective antibiotic.
Area of Science:
- Infectious Diseases
- Microbiology
- Immunology
Background:
- Burkholderia pseudomallei is a significant human pathogen.
- The impact of inhaled particle size on melioidosis pathogenesis is not fully understood.
Purpose of the Study:
- To investigate the influence of inhaled Burkholderia pseudomallei particle size on infection kinetics and pathology in a murine model.
- To compare the efficacy of co-trimoxazole and doxycycline in treating inhalational melioidosis.
Main Methods:
- Balb/c mice were infected via inhalation with B. pseudomallei in 1 μm or 12 μm particle aerosols.
- Infection kinetics, time-to-death, median lethal dose, and pathological changes were assessed.
- Efficacy of co-trimoxazole and doxycycline treatments was evaluated.
Main Results:
- Inhalation of 12 μm particles resulted in a prolonged mean time-to-death (174.7 h) compared to 1 μm particles (73.8 h).
- 12 μm particles led to significant nasal mucosa involvement, olfactory nerve extension to the brain, and abscessation.
- 1 μm particles caused greater lung pathology and mediastinal lymph node involvement.
- Co-trimoxazole was more effective than doxycycline overall, though doxycycline improved survival with 12 μm particles.
- Both treatments resulted in significant relapses upon discontinuation.
Conclusions:
- Inhaled particle size significantly influences B. pseudomallei infection dynamics and target organ pathology.
- Antibiotic choice and particle size impact treatment efficacy, but relapses remain a concern.
- Further research is needed to optimize melioidosis treatment strategies.

