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Published on: October 8, 2021
Specialized digestive mechanism for an insect-bacterium gut symbiosis
Junbeom Lee1, Bohyun Jeong2, Jeongtae Kim3
1Metabolomics Research Center for Functional Materials, Kyungsung University, Busan 48434, South Korea.
Abstract:
In Burkholderia-Riptortus symbiosis, the host bean bug Riptortus pedestris harbors Burkholderia symbionts in its symbiotic organ, M4 midgut, for use as a nutrient source. After occupying M4, excess Burkholderia symbionts are moved to the M4B region, wherein they are effectively digested and absorbed. Previous studies have shown that M4B has strong symbiont-specific antibacterial activity, which is not because of the expression of antimicrobial peptides but rather because of the expression of digestive enzymes, mainly cathepsin L protease. However, in this study, inhibition of cathepsin L activity did not reduce the bactericidal activity of M4B, indicating that there is an unknown digestive mechanism that renders specifically potent bactericidal activity against Burkholderia symbionts. Transmission electron microscopy revealed that the lumen of symbiotic M4B was filled with a fibrillar matter in contrast to the empty lumen of aposymbiotic M4B. Using chromatographic and electrophoretic analyses, we found that the bactericidal substances in M4B existed as high-molecular-weight (HMW) complexes that were resistant to protease degradation. The bactericidal HMW complexes were visualized on non-denaturing gels using protein- and polysaccharide-staining reagents, thereby indicating that the HMW complexes are composed of proteins and polysaccharides. Strongly stained M4B lumen with Periodic acid-Schiff (PAS) reagent in M4B paraffin sections confirmed HMW complexes with polysaccharide components. Furthermore, M4B smears stained with Periodic acid-Schiff revealed the presence of polysaccharide fibers. Therefore, we propose a key digestive mechanism of M4B: bacteriolytic fibers, polysaccharide fibers associated with digestive enzymes such as cathepsin L, specialized for Burkholderia symbionts in Riptortus gut symbiosis.
Insights
The Riptortus gut symbiosis uses novel bacteriolytic fibers in the M4B region to digest Burkholderia symbionts. These high-molecular-weight complexes, containing proteins and polysaccharides, are key to this unique digestive mechanism.
Area of Science:
- Microbiology
- Insect-microbe symbiosis
- Digestive physiology
Background:
- The Riptortus pedestris bean bug harbors Burkholderia symbionts in its M4 midgut.
- Excess symbionts are moved to the M4B region for digestion and absorption.
- Previous research suggested cathepsin L protease was responsible for M4B's antibacterial activity.
Purpose of the Study:
- To investigate the unknown digestive mechanism in the M4B region responsible for Burkholderia symbiont digestion.
- To identify the components and nature of the bactericidal substances in M4B.
Main Methods:
- Transmission electron microscopy (TEM) to visualize M4B lumen contents.
- Chromatographic and electrophoretic analyses to characterize bactericidal substances.
- Periodic acid-Schiff (PAS) staining to detect polysaccharides.
Main Results:
- Inhibition of cathepsin L did not abolish M4B's bactericidal activity.
- TEM revealed fibrillar matter in symbiotic M4B lumen, absent in aposymbiotic M4B.
- Bactericidal substances were identified as high-molecular-weight (HMW) complexes resistant to protease degradation.
- PAS staining confirmed HMW complexes contain both proteins and polysaccharides, termed bacteriolytic fibers.
Conclusions:
- M4B employs a novel digestive mechanism involving bacteriolytic fibers for Burkholderia symbionts.
- These bacteriolytic fibers are composed of polysaccharides and associated digestive enzymes.
- This mechanism is specialized for symbiont digestion in the Riptortus gut symbiosis.
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