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Updated: May 5, 2026

Collection of Alfalfa Root Exudates to Study the Impact of Di2-ethylhexyl Phthalate on Metabolite Production
Published on: June 2, 2023
Microbial consortium accelerates di(2-ethylhexyl) phthalate degradation through amino acid exchange-mediated
Heqi Guo1, Wenli Zhang1, Weihui Xu1
1College of Life Science and Agroforestry, Qiqihar University, Qiqihar 161006, China; Heilongjiang Provincial Engineering Technology Research Center of Agromicrobial Preparation Industrialization, Qiqihar 161006, China; Heilongjiang Provincial Collaborative Innovation Center of Agrobiological Preparation Industrialization, Qiqihar 161006, China; Heilongjiang Provincial Concept Verification Center of High Concentration Organic Waste Liquid Biotransformation and Industrialization, Qiqihar 161006, China.
Abstract:
Agricultural soils in northeast China's black soil region are contaminated with di(2-ethylhexyl) phthalate (DEHP) from extensive plastic film use, adversely affecting soil ecological safety. In this study, 33 key degrading strains were isolated from 21 natural DEHP-degrading consortia identified from black soil in earlier laboratory work. Four principles for constructing consortia were proposed, and the optimal consortium A achieved a maximum degradation efficiency of 99.2 % ± 0.59 % in 72 h. The biomass of consortium A increased by 1.4 to 50.3 times, and DEHP degradation efficiency was improved by 1.07 to 58.82 times compared to Sphingomonas parapaucimobilis GHQ28 and Stenotrophomonas maltophilia GHQ31. During the degradation of consortium A, the intermediate metabolites of DEHP were fully consumed, resulting in its complete degradation. Additionally, GHQ28 metabolites enhanced GHQ31 growth. Under co-cultivation, leucylproline is hypothesized to be degraded by GHQ28 into leucine and proline, supporting GHQ31 growth. In GHQ31 monoculture, biomass was significantly increased by supplementing leucine and proline, with the maximum DEHP degradation efficiency increasing from 1.48 % ± 0.25 % to 84.39 % ± 0.47 % in 72 h. These results demonstrated that DEHP could be rapidly and completely degraded by consortium A, and the mechanism underlying inter-strain synergistic interactions promoted DEHP degradation had been elucidated.
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