Molecule of the Month: Carbon Capture Mechanisms
Scientists are studying cyanobacteria to improve the productivity of agricultural crops
Carbon Experts
Bicarbonate Transport
Containing Carbon
Carbon Capture
Exploring the Structure
Bicarbonate Transporter
Bicarbonate transporters are regulated to provide the proper amount of carbon to the photosynthetic machinery. The cyanobacterial transporter SbtA is regulated by the associated protein SbtB. As seen in PDB ID 7egl at the top, when bicarbonate is needed, a loop in SbtB is disordered, leaving the transport channel in SbtA open and available for passage. However, when AMP binds to SbtB (bottom, PDB ID 7cyf or 7egk), this T-loop binds to SbtA and blocks the action of the channel. To explore these two structures in more detail, click on the JSmol tab for an interactive view.
Topics for Further Discussion
- The full atomic structure of carboxysomes is still under study, but you can look at the structure of one vertex in PDB ID 8wxb and a mini-carboxysome in PDB ID 8b12.
- Higher plants don’t have these carbon capture mechanisms, but green algae do. For example, look at PDB ID 6bhp to see an algal channel that is thought to transport carbon dioxide.
Related PDB-101 Resources
- Browse Biology of Plants
- Browse Molecules for a Sustainable Future
References
- 7yyo: Evans, S.L., Al-Hazeem, M.M.J., Mann, D., Smetacek, N., Beavil, A.J., Sun, Y., Chen, T., Dykes, G.F., Liu, L.N., Bergeron, J.R.C. (2023) Single-particle cryo-EM analysis of the shell architecture and internal organization of an intact alpha-carboxysome. Structure 31: 677-688
- 7egl: Fang, S., Huang, X., Zhang, X., Zhang, M., Hao, Y., Guo, H., Liu, L.N., Yu, F., Zhang, P. (2021) Molecular mechanism underlying transport and allosteric inhibition of bicarbonate transporter SbtA. Proc Natl Acad Sci U S A 118: e2101632118
- 7cyf: Liu, X.Y., Hou, W.T., Wang, L., Li, B., Chen, Y., Chen, Y., Jiang, Y.L., Zhou, C.Z. (2021) Structures of cyanobacterial bicarbonate transporter SbtA and its complex with PII-like SbtB. Cell Discov 7: 63-63
- 6tjv: Schuller, J.M., Saura, P., Thiemann, J., Schuller, S.K., Gamiz-Hernandez, A.P., Kurisu, G., Nowaczyk, M.M., Kaila, V.R.I. (2020) Redox-coupled proton pumping drives carbon concentration in the photosynthetic complex I. Nat Commun 11: 494-494
- 6ki1, 6ki2: Wang, C., Sun, B., Zhang, X., Huang, X., Zhang, M., Guo, H., Chen, X., Huang, F., Chen, T., Mi, H., Yu, F., Liu, L.N., Zhang, P. (2019) Structural mechanism of the active bicarbonate transporter from cyanobacteria. Nat Plants 5: 1184-1193
- Ort, D.R., Merchant, S.S., Alric, J., Barkan, A., Blankenship, R.E., Bock, R., Croce, R., Hanson, M.R., Hibberd, J.M., Long, S.P., Moore, T.A., Moroney, J., Niyogi, K.K., Parry, M.A., Peralta-Yahya, P.P., Prince, R.C., Redding, K.E., Spalding, M.H., van Wijk, K.J., Vermaas, W.F., von Caemmerer S., Weber A.P., Yeates T.O., Yuan J.S., Zhu, X.G. (2015) Redesigning photosynthesis to sustainably meet global food and bioenergy demand. Proc Natl Acad Sci USA 112: 8529-8536.
- Rae, B.D., Long, B.M., Badger, M.R., Price, G.D. (2013). Functions, compositions, and evolution of the two types of carboxysomes: polyhedral microcompartments that facilitate CO2 fixation in cyanobacteria and some proteobacteria. Microbio Mol Biol Rev 77: 357–379
- Badger, M.R., Price, G.D. (2003) CO2 concentrating mechanisms in cyanobacteria: molecular components, their diversity and evolution. J Exper Botany 54: 609–622
September 2024, David Goodsell
http://doi.org/10.2210/rcsb_pdb/mom_2024_9