Department of Biological Sciences, University of Cincinnati, Cincinnati, Ohio, USA.
mSphere. 2024 Feb 28;9(2):e0063523. doi: 10.1128/msphere.00635-23. Epub 2024 Feb 5.
Noelia Lander works on cell signaling in American trypanosomes and studies the role of cyclic adenosine monophosphate (cAMP) microdomains in environmental sensing and differentiation. In this mSphere of Influence, Dr. Lander reflects on three research articles in different eukaryotic models that had impacted on the way she thinks about the regulation of cAMP signals in , the etiologic agent of Chagas disease. The articles "FRET biosensor uncovers cAMP nano-domains at β-adrenergic targets that dictate precise tuning of cardiac contractility" (N. C. Surdo, M. Berrera, A. Koschinski, M. Brescia, et al., Nat Commun 8:15031, 2017, https://doi.org/10.1038/ncomms15031), "Cyclic AMP signaling and glucose metabolism mediate pH taxis by African trypanosomes" (S. Shaw, S. Knüsel, D. Abbühl, A. Naguleswaran, et al., Nat Commun 13:603, 2022, https://doi.org/10.1038/s41467-022-28293-w), and "Encystation stimuli sensing is mediated by adenylate cyclase AC2-dependent cAMP signaling in " (H. W. Shih, G. C. M. Alas, and A. R. Paredez, Nat Commun 14:7245, 2023, https://doi.org/10.1038/s41467-023-43028-1) influenced her current hypothesis that cAMP signals are generated in response to environmental cues leading to changes in membrane fluidity at the flagellar tip and the contractile vacuole complex of , structures where cAMP mediates key cellular processes for developmental progression.
Noelia Lander 从事美国锥体虫细胞信号转导研究,研究环腺苷酸(cAMP)微区在环境感应和分化中的作用。在本期的《mSphere》杂志中,Lander 博士回顾了三篇不同真核模型的研究论文,这些论文对她思考引起恰加斯病的病原体锥虫中 cAMP 信号的调控方式产生了影响。这三篇论文分别是:“FRET 生物传感器揭示了β-肾上腺素能靶点的 cAMP 纳米区,这些纳米区决定了心脏收缩的精确调节”(N. C. Surdo、M. Berrera、A. Koschinski、M. Brescia 等人,《自然通讯》8:15031,2017,https://doi.org/10.1038/ncomms15031),“环腺苷酸信号和葡萄糖代谢介导非洲锥虫的 pH 趋化性”(S. Shaw、S. Knüsel、D. Abbühl、A. Naguleswaran 等人,《自然通讯》13:603,2022,https://doi.org/10.1038/s41467-022-28293-w)和“囊泡形成刺激感应是由非洲锥虫中的腺苷酸环化酶 AC2 依赖性 cAMP 信号介导的”(H. W. Shih、G. C. M. Alas 和 A. R. Paredez,《自然通讯》14:7245,2023,https://doi.org/10.1038/s41467-023-43028-1)。这些论文影响了她目前的假设,即 cAMP 信号是对环境信号的响应产生的,这些信号会导致鞭毛尖端和收缩泡复合体的膜流动性发生变化,cAMP 在此结构中调节着发育进展的关键细胞过程。