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Human NEET proteins contain two [2Fe-2S] iron-sulfur clusters, bound to three Cys residues and one His residue. They exist in two redox states. Recently, these proteins have revealed themselves as attractive drug targets for mitochondrial dysfunction-related diseases, such as type 2 diabetes, Wolfram syndrome 2, and cancers. Unfortunately, the lack of information and mechanistic understanding of ligands binding to the whole functional, cytoplasmatic domain has limited rational drug design approaches. Here, we use an enhanced sampling technique, volume-based metadynamics, recently developed by a team involving some of us, to predict the poses and affinity of the 2-benzamido-4-(1,2,3,4-tetrahydronaphthalen-2-yl)-thiophene-3-carboxylate ligand to the entire surface of the cytoplasmatic domain of the human NEET protein mitoNEET (mNT) in an aqueous solution. The calculations, based on the recently published X-ray structure of the complex, are consistent with the measured affinity. The calculated free energy landscape revealed that the ligand can bind in multiple sites and with poses other than the one found in the X-ray. This difference is likely to be caused by crystal packing effects that allow the ligand to interact with multiple adjacent NEET protein copies. Such extra contacts are of course absent in the solution; therefore, the X-ray pose is only transient in our calculations, where the binding free energy correlates with the number of contacts. We further evaluated how the reduction and protonation of the Fe-bound histidine, as well as temperature, can affect ligand binding. Both such modifications introduce the possibility for the ligand to bind in an area of the protein other than the one observed in the X-ray, with no or little impact on affinity. Overall, our study can provide insights on the molecular recognition mechanisms of ligand binding to mNT in different oxidative conditions, possibly helping rational drug design of NEET ligands.
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http://dx.doi.org/10.1021/acs.jcim.2c01280 | DOI Listing |
Int J Biol Macromol
August 2025
Key Laboratory of Chemical Biology and Molecular Engineering of Ministry of Education, Institute of Molecular Science, Shanxi University, Taiyuan 030006, China.
NEET protein is an evolutionarily conserved protein in almost all kingdoms of life. As an important member of the NEET (Asn-Glu-Glu-Thr) superfamily, MiNT (Miner2) involved in regulating iron and reactive oxygen species (ROS) homeostasis. It contains two CDGSH (consensus sequence: C-X-C-X2-(S/T)-X3-P-X-C-D-G-(S/A/T)-H) domains used for binding [2Fe2S] clusters.
View Article and Find Full Text PDFAdv Exp Med Biol
July 2025
The Alexander Silberman Institute of Life Sciences, The Hebrew University of Jerusalem, Jerusalem, Israel.
Labile iron is an exchangeable and redox-active form of Fe/Fe that is identified in cells under normal or pathological conditions, particularly with the aid of an increasing number of metal-sensitive probes, especially those carrying fluorescent-based sensors, some targetable to specific cell organelles, some useful for real-time measurements. Cell labile iron pools (LIPs) are associated with multiple ligands, predominantly as Fe-GSH adducts, whose chemical identity remains to be firmly identified. Estimated cellular LIP levels are in the lower μMolar range, rising substantially in systemic iron overload, thus serving as targets for screening of drugs for chelation efficacy and protection from oxidative damage, including ferroptosis.
View Article and Find Full Text PDFNat Commun
May 2025
Center for Cancer and Immunology Research, and Division of Biostatistics and Study Methodology, Children's National Hospital, Washington, DC, USA.
Novel cellular therapies may enable HIV control or cure. HIV-specific T cells targeting conserved immunogenic protein regions of HIV Gag/Pol and the entirety of HIV Nef, termed HST-NEETs, eliminate HIV infected cells in vitro. Here we enroll seven participants in an open-label, single-arm phase 1 study (NCT03485963) to evaluate the safety (primary endpoint) of two autologous administrations of HST-NEET products without prescribed lymphodepletion.
View Article and Find Full Text PDFBiomed Pharmacother
June 2025
Department of Pharmacology College of Pharmaceutical Sciences, Suzhou Key Laboratory of Aging and Nervous Diseases, and Jiangsu Key Laboratory of Neuropsychiatric Diseases, Soochow University, Suzhou, Jiangsu, China. Electronic address:
Maintaining mitochondrial function plays a crucial role in preventing and treating neurodegenerative diseases. CDGSH iron-sulfur domain 1 (CISD1), a NEET family protein localized on the mitochondrial outer membrane, regulates mitochondrial iron transport. However, the precise mechanism by which CISD1 modulates mitochondrial Fe remains unclear.
View Article and Find Full Text PDFProc Natl Acad Sci U S A
May 2024
Department of Surgery, University of Missouri School of Medicine, Christopher S. Bond Life Sciences Center, University of Missouri, Columbia, MO 65201.
Mitochondria play a central role in muscle metabolism and function. A unique family of iron-sulfur proteins, termed CDGSH Iron Sulfur Domain-containing (CISD/NEET) proteins, support mitochondrial function in skeletal muscles. The abundance of these proteins declines during aging leading to muscle degeneration.
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