肩胛硬蜱
嗜噬粒细胞间质
生物
使负有责任或义务
微生物学
螺旋体
伯氏疏螺旋体
美洲弱视
滴答声
硬蜱
无浆体
病毒学
生态学
免疫学
硬蜱科
抗体
作者
Sourabh Samaddar,Agustín Rolandelli,Anya J. O’Neal,Hanna J. Laukaitis-Yousey,Liron Marnin,Nisha Singh,Xiaowei Wang,L. Rainer Butler,Parisa Rangghran,Chrysoula Kitsou,Francy E. Cabrera Paz,Luisa M. Valencia,Camila R. Ferraz,Ulrike G. Munderloh,Benedict Khoo,Benjamin Cull,Kristin L. Rosche,Dana K. Shaw,Jonathan D. Oliver,Sukanya Narasimhan
标识
DOI:10.1038/s41564-024-01756-0
摘要
Arthropod-borne pathogens are responsible for hundreds of millions of infections in humans each year. The blacklegged tick, Ixodes scapularis, is the predominant arthropod vector in the United States and is responsible for transmitting several human pathogens, including the Lyme disease spirochete Borrelia burgdorferi and the obligate intracellular rickettsial bacterium Anaplasma phagocytophilum, which causes human granulocytic anaplasmosis. However, tick metabolic response to microbes and whether metabolite allocation occurs upon infection remain unknown. Here we investigated metabolic reprogramming in the tick ectoparasite I. scapularis and determined that the rickettsial bacterium A. phagocytophilum and the spirochete B. burgdorferi induced glycolysis in tick cells. Surprisingly, the endosymbiont Rickettsia buchneri had a minimal effect on bioenergetics. An unbiased metabolomics approach following A. phagocytophilum infection of tick cells showed alterations in carbohydrate, lipid, nucleotide and protein metabolism, including elevated levels of the pleiotropic metabolite β-aminoisobutyric acid. We manipulated the expression of genes associated with β-aminoisobutyric acid metabolism in I. scapularis, resulting in feeding impairment, diminished survival and reduced bacterial acquisition post haematophagy. Collectively, we discovered that metabolic reprogramming affects interspecies relationships and fitness in the clinically relevant tick I. scapularis.
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