Electrostatic and Structural Bases of Fe2+ Translocation through Ferritin Channels

التفاصيل البيبلوغرافية
العنوان: Electrostatic and Structural Bases of Fe2+ Translocation through Ferritin Channels
المؤلفون: Paola Turano, Balasubramanian Chandramouli, Danilo Di Maio, Giuseppe Brancato, Caterina Bernacchioni
المساهمون: Chandramouli, Balasubramanian, Bernacchioni, Caterina, DI MAIO, Danilo, Turano, Paola, Brancato, Giuseppe
المصدر: The Journal of biological chemistry. 291(49)
سنة النشر: 2016
مصطلحات موضوعية: Iron, Mutant, Supramolecular chemistry, translocation, Mutagenesis (molecular biology technique), Chromosomal translocation, 010402 general chemistry, Crystallography, X-Ray, 01 natural sciences, Biochemistry, Iron storage, Amphibian Proteins, Molecular dynamics, iron, Protein Domains, multi-ion mechanism, Animals, structure, Molecular Biology, Ion channel, Settore CHIM/02 - Chimica Fisica, Rana catesbeiana, ferritin channel, biology, 010405 organic chemistry, Chemistry, iron uptake, molecular dynamic, ferritin, Computational Biology, Cell Biology, 0104 chemical sciences, Ferritin, ion channel, Ferritins, biology.protein, Biophysics
الوصف: Ferritin molecular cages are marvelous 24-mer supramolecular architectures that enable massive iron storage (>2000 iron atoms) within their inner cavity. This cavity is connected to the outer environment by two channels at C3 and C4 symmetry axes of the assembly. Ferritins can also be exploited as carriers for in vivo imaging and therapeutic applications, owing to their capability to effectively protect synthetic non-endogenous agents within the cage cavity and deliver them to targeted tissue cells without stimulating adverse immune responses. Recently, X-ray crystal structures of Fe(2+)-loaded ferritins provided important information on the pathways followed by iron ions toward the ferritin cavity and the catalytic centers within the protein. However, the specific mechanisms enabling Fe(2+) uptake through wild-type and mutant ferritin channels is largely unknown. To shed light on this question, we report extensive molecular dynamics simulations, site-directed mutagenesis, and kinetic measurements that characterize the transport properties and translocation mechanism of Fe(2+) through the two ferritin channels, using the wild-type bullfrog Rana catesbeiana H' protein and some of its variants as case studies. We describe the structural features that determine Fe(2+) translocation with atomistic detail, and we propose a putative mechanism for Fe(2+) transport through the channel at the C3 symmetry axis, which is the only iron-permeable channel in vertebrate ferritins. Our findings have important implications for understanding how ion permeation occurs, and further how it may be controlled via purposely engineered channels for novel biomedical applications based on ferritin.
تدمد: 1083-351X
الوصول الحر: https://explore.openaire.eu/search/publication?articleId=doi_dedup___::775e079d2f8fc2f7922d4eb1c487be37Test
https://pubmed.ncbi.nlm.nih.gov/27756844Test
حقوق: OPEN
رقم الانضمام: edsair.doi.dedup.....775e079d2f8fc2f7922d4eb1c487be37
قاعدة البيانات: OpenAIRE