Literature DB >> 33197096

Structural insight into the novel iron-coordination and domain interactions of transferrin-1 from a model insect, Manduca sexta.

Jacob J Weber1, Maithri M Kashipathy2, Kevin P Battaile3, Eden Go4, Heather Desaire4, Michael R Kanost1, Scott Lovell2, Maureen J Gorman1.   

Abstract

Transferrins function in iron sequestration and iron transport by binding iron tightly and reversibly. Vertebrate transferrins coordinate iron through interactions with two tyrosines, an aspartate, a histidine, and a carbonate anion, and conformational changes that occur upon iron binding and release have been described. Much less is known about the structure and functions of insect transferrin-1 (Tsf1), which is present in hemolymph and influences iron homeostasis mostly by unknown mechanisms. Amino acid sequence and biochemical analyses have suggested that iron coordination by Tsf1 differs from that of the vertebrate transferrins. Here we report the first crystal structure (2.05 Å resolution) of an insect transferrin. Manduca sexta (MsTsf1) in the holo form exhibits a bilobal fold similar to that of vertebrate transferrins, but its carboxyl-lobe adopts a novel orientation and contacts with the amino-lobe. The structure revealed coordination of a single Fe3+ ion in the amino-lobe through Tyr90, Tyr204, and two carbonate anions. One carbonate anion is buried near the ferric ion and is coordinated by four residues, whereas the other carbonate anion is solvent exposed and coordinated by Asn121. Notably, these residues are highly conserved in Tsf1 orthologs. Docking analysis suggested that the solvent exposed carbonate position is capable of binding alternative anions. These findings provide a structural basis for understanding Tsf1 function in iron sequestration and transport in insects as well as insight into the similarities and differences in iron homeostasis between insects and humans.
© 2020 The Protein Society.

Entities:  

Keywords:  hemolymph; insect; iron coordination; iron homeostasis; metal binding; protein structure; transferrin

Mesh:

Substances:

Year:  2020        PMID: 33197096      PMCID: PMC7784759          DOI: 10.1002/pro.3999

Source DB:  PubMed          Journal:  Protein Sci        ISSN: 0961-8368            Impact factor:   6.993


  67 in total

1.  Biochemistry. Resolving some old problems in protein crystallography.

Authors:  Phil Evans
Journal:  Science       Date:  2012-05-25       Impact factor: 47.728

Review 2.  A structural framework for understanding the multifunctional character of lactoferrin.

Authors:  Edward N Baker; Heather M Baker
Journal:  Biochimie       Date:  2008-05-21       Impact factor: 4.079

Review 3.  Physiological roles of ovotransferrin.

Authors:  Francesco Giansanti; Loris Leboffe; Giuseppina Pitari; Rodolfo Ippoliti; Giovanni Antonini
Journal:  Biochim Biophys Acta       Date:  2011-08-10

4.  Structure of human lactoferrin: crystallographic structure analysis and refinement at 2.8 A resolution.

Authors:  B F Anderson; H M Baker; G E Norris; D W Rice; E N Baker
Journal:  J Mol Biol       Date:  1989-10-20       Impact factor: 5.469

Review 5.  Molecular evolution of the transferrin family and associated receptors.

Authors:  Lisa A Lambert
Journal:  Biochim Biophys Acta       Date:  2011-06-15

6.  Experimental phasing with SHELXC/D/E: combining chain tracing with density modification.

Authors:  George M Sheldrick
Journal:  Acta Crystallogr D Biol Crystallogr       Date:  2010-03-24

7.  Features and development of Coot.

Authors:  P Emsley; B Lohkamp; W G Scott; K Cowtan
Journal:  Acta Crystallogr D Biol Crystallogr       Date:  2010-03-24

8.  The EMBL-EBI search and sequence analysis tools APIs in 2019.

Authors:  Fábio Madeira; Young Mi Park; Joon Lee; Nicola Buso; Tamer Gur; Nandana Madhusoodanan; Prasad Basutkar; Adrian R N Tivey; Simon C Potter; Robert D Finn; Rodrigo Lopez
Journal:  Nucleic Acids Res       Date:  2019-07-02       Impact factor: 16.971

9.  N-GlyDE: a two-stage N-linked glycosylation site prediction incorporating gapped dipeptides and pattern-based encoding.

Authors:  Thejkiran Pitti; Ching-Tai Chen; Hsin-Nan Lin; Wai-Kok Choong; Wen-Lian Hsu; Ting-Yi Sung
Journal:  Sci Rep       Date:  2019-11-04       Impact factor: 4.379

10.  Structural insight into the novel iron-coordination and domain interactions of transferrin-1 from a model insect, Manduca sexta.

Authors:  Jacob J Weber; Maithri M Kashipathy; Kevin P Battaile; Eden Go; Heather Desaire; Michael R Kanost; Scott Lovell; Maureen J Gorman
Journal:  Protein Sci       Date:  2020-11-28       Impact factor: 6.993

View more
  3 in total

1.  The opportunity cost of automated glycopeptide analysis: case study profiling the SARS-CoV-2 S glycoprotein.

Authors:  Eden P Go; Shijian Zhang; Haitao Ding; John C Kappes; Joseph Sodroski; Heather Desaire
Journal:  Anal Bioanal Chem       Date:  2021-08-27       Impact factor: 4.478

2.  Functional disruption of transferrin expression alters reproductive physiology in Anopheles culicifacies.

Authors:  Jyoti Rani; Tanwee Das De; Charu Chauhan; Seena Kumari; Punita Sharma; Sanjay Tevatiya; Soumyananda Chakraborti; Kailash C Pandey; Namita Singh; Rajnikant Dixit
Journal:  PLoS One       Date:  2022-03-04       Impact factor: 3.240

3.  Structural insight into the novel iron-coordination and domain interactions of transferrin-1 from a model insect, Manduca sexta.

Authors:  Jacob J Weber; Maithri M Kashipathy; Kevin P Battaile; Eden Go; Heather Desaire; Michael R Kanost; Scott Lovell; Maureen J Gorman
Journal:  Protein Sci       Date:  2020-11-28       Impact factor: 6.993

  3 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.