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Biology subjects

Nikoh, N.

Publications and source records attributed to Nikoh, N..

2 recordsLinked to original sources

Tryptophanase disruption underlies the evolution of insect-bacterium mutualism

Animal-microbe symbioses are omnipresent, where both partners often gain benefits as mutualists. How such mutualism has evolved between originally unrelated organisms is of interest. Here we report that, using an experimental symbiotic system between the stinkbug Plautia stali and the model bacterium Escherichia coli, disruption of a single bacterial gene tnaA encoding tryptophanase makes E. coli mutualistic to P. stali. Survey of natural bacterial mutualists across wild populations of P. stali and other stinkbug species uncovered that their Pantoea-allied symbionts consistently lack tnaA gene. Some Pantoea species like P. ananatis retain tnaA gene and cannot establish symbiosis with P. stali, but tnaA-disrupted P. ananatis partially restored the symbiotic capability. When a natural Pantoea mutualist of P. stali was transformed with a functional tna operon, its symbiotic capability reduced significantly. Our finding suggests that tryptophanase disruption may have facilitated the evolution of gut bacterial mutualists in insects.

evolutionary biology↗

Defensive fungal symbiosis on insect hindlegs

Tympanal organs as "insect ears" have evolved repeatedly. Dinidorid stinkbugs were reported to possess a conspicuous tympanal organ on females hindlegs. Here we report an unexpected discovery that the stinkbugs "tympanal organ" is actually a novel symbiotic organ. The stinkbugs "tympanum" is not membranous but a porous cuticle, where each pore connects to glandular secretory cells. In reproductive females, the hindleg organ is covered with fungal hyphae growing out of the pores. Upon oviposition, the females skillfully transfer the fungi from the organ to the eggs. The eggs are quickly covered with hyphae and physically protected against wasp parasitism. The fungi are mostly benign Cordycipitaceae entomopathogens and show considerable diversity among insect individuals and populations, indicating environmental acquisition of specific fungal associates. These results uncover a novel external fungal symbiosis in which hosts elaborate morphological, physiological and behavioral specializations underpin the selective recruitment of benign entomopathogens for a defensive purpose.

microbiology↗