Benner left University of Florida in late December 2005 to found The Westheimer Institute of Science and Technology (TWIST) in Honor of Frank Westheimer. It is part of the Foundation For Applied Molecular Evolution (FfAME) in Alachua, Florida, which Benner founded in 2001.
Benner founded EraGen Biosciences in 1999. The company was acquired by Luminex in 2011. He founded Firebird BioMolecular Sciences LLC in 2005.
In 1984, Benner's laboratory at Harvard was the first to report the chemical synthesis of a gene encoding an enzyme, following Khorana's synthesis of a shorter gene for tRNA in 1970. This was the first designed gene of any kind, a pioneering achievement that laid the groundwork for protein engineering. The design strategies introduced in this synthesis are now widely used to support protein engineering.
Efforts toward the goal of artificial genetic systems were first reported by Benner and coworkers in 1989, when they developed the first unnatural base pair. Benner and his colleagues have since developed a six-letter artificially expanded genetic information system called Artificially Expanded Genetic Information System (AEGIS) which includes two additional nonstandard nucleotides (Z and P) in addition to the four standard nucleotides (G, A, C, and T). AEGIS has its own supporting molecular biology. It enables the synthesis of proteins with more than the naturally-encoded 20 amino acids, and provides insight into how nucleic acids form duplex structures, how proteins interact with nucleic acids, and how alternative genetic systems might appear in non-terran life.
Benner is one of a number of researchers, including Eric T. Kool, Floyd E. Romesberg, Ichiro Hirao, Mitsuhiko Shionoya and Andrew Ellington, who have created an extended alphabet of synthetic bases that can be incorporated into DNA (as well as RNA) using Watson-Crick bonding (as well as non-Watson-Crick bonding). While most of these synthetic bases are derivatives of the A, C, G, T bases, some are different. While some are in Watson-Crick pairs (A/T, C/G), some are self complementing (X/X). Thus the genetic alphabet has been expanded.: 88–98
Benner has used synthetic organic chemistry and biophysics to create a "second generation" model for nucleic acid structure. The first generation model of DNA was proposed by James Watson and Francis Crick, based on crystallized X-ray structures being studied by Rosalind Franklin. According to the double-helix model, DNA is composed of two complementary strands of nucleotides coiled around each other. Benner's model emphasizes the role of the sugar and phosphate backbone in the genetic molecular recognition event. The poly-anionic backbone is important in creating the extended structure that helps DNA to replicate.
In 2004, Benner reported the first successful attempt to design an artificial DNA-like molecule capable of reproducing itself.
In the late 1980s, Benner recognized the potential for genome sequencing projects to generate millions of sequences and enable researchers to do extensive mapping of molecular structures in organic chemistry. In the early 1990s, Benner met Gaston Gonnet, beginning a collaboration that applied Gonnet's tools for text searching to the management of protein sequences. In 1990, in collaboration with Gaston Gonnet, the Benner laboratory introduced the DARWIN bioinformatics workbench. DARWIN (Data Analysis and Retrieval With Indexed Nucleic acid-peptide sequences) was a high-level programming environment for examining genomic sequences. It supported the matching of genomic sequences in databases, and generated information that showed how natural proteins could divergently evolve under functional constraints by accumulating mutations, insertions, and deletions. Building on Darwin, the Benner laboratory provided tools to predict the three dimensional structure of proteins from sequence data. Information about known protein structures was collected and marketed as a commercial database, the Master Catalog, by Benner's startup EraGen.
The use of multiple sequence information to predict secondary structure of proteins became popular as a result of the work of Benner and Gerloff. Predictions of protein secondary structure by Benner and colleagues achieved high accuracy. It became possible to model protein folds, detect distant homologs, enable structural genomics, and join protein sequence, structure, and function. Further, this work suggested limits to structure prediction by homology, defining what can and cannot be done with this strategy.
Benner's approach opened new perspectives on how nucleic acids work, as well as tools for diagnostics and nanotechnology. The FDA has approved products that use AEGIS DNA in human diagnostics. These monitor the loads of virus in patients infected with hepatitis B, hepatitis C and HIV. AEGIS has been the basis of the development of tools for multiplexed detection of genetic markers such as cancer cells and single nucleotide polymorphisms in patient samples. These tools will allow personalized medicine using "point-of-care" genetic analysis, as well as research tools that measure the level of individual mRNA molecules within single processes of single living neurons.
Interpreting genomic data and projecting back to a common genetic ancestor, "Luca", the Benner laboratory has introduced tools that analyze patterns of conservation and variation using structural biology, study variation in these patterns across different branches of an evolutionary tree, and correlate events in the genetic record with events in the history of the biosphere known from geology and fossils. From this have emerged examples showing how the roles of biomolecules in contemporary life can be understood through models of the historical past.
The Benner group has worked to identify molecular structures likely to be universal features of living systems regardless of their genesis, and not likely products of non-biological processes. These are "biosignatures", both for terrean-like life and for "weird" life forms.
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Köhrer, Caroline; RajBhandary, Uttam L., eds. (2009). Protein engineering. Berlin: Springer. pp. 274–281, 297. ISBN 978-3-540-70941-1. Retrieved 5 July 2016. 978-3-540-70941-1
Fikes, Bradley J. (May 8, 2014). "Life engineered with expanded genetic code". San Diego Union Tribune. Retrieved 5 July 2016. http://www.utsandiego.com/news/2014/may/08/tp-life-engineered-with-expanded-genetic-code/
Matsuda, Shigeo; Fillo, Jeremiah D.; Henry, Allison A.; Rai, Priyamrada; Wilkens, Steven J.; Dwyer, Tammy J.; Geierstanger, Bernhard H.; Wemmer, David E.; Schultz, Peter G.; Spraggon, Glen; Romesberg, Floyd E. (August 2007). "Efforts toward Expansion of the Genetic Alphabet: Structure and Replication of Unnatural Base Pairs". Journal of the American Chemical Society. 129 (34): 10466–10473. Bibcode:2007JAChS.12910466M. doi:10.1021/ja072276d. PMC 2536688. PMID 17685517. https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2536688
Switzer, Christopher; Moroney, Simon E.; Benner, Steven A. (October 1989). "Enzymatic incorporation of a new base pair into DNA and RNA". Journal of the American Chemical Society. 111 (21): 8322–8323. Bibcode:1989JAChS.111.8322S. doi:10.1021/ja00203a067. /wiki/Bibcode_(identifier)
Piccirilli, Joseph A.; Benner, Steven A.; Krauch, Tilman; Moroney, SimonE.; Benner, Steven A. (4 January 1990). "Enzymatic incorporation of a new base pair into DNA and RNA extends the genetic alphabet". Nature. 343 (6253): 33–37. Bibcode:1990Natur.343...33P. doi:10.1038/343033a0. PMID 1688644. S2CID 4363955. /wiki/Bibcode_(identifier)
Benner, SA; Hutter, D; Sismour, AM (2003). "Synthetic biology with artificially expanded genetic information systems. From personalized medicine to extraterrestrial life". Nucleic Acids Research. Supplement. 3 (3): 125–6. doi:10.1093/nass/3.1.125. PMID 14510412. /wiki/Doi_(identifier)
Yang, Z; Hutter, D; Sheng, P; Sismour, AM; Benner, SA (2006). "Artificially expanded genetic information system: a new base pair with an alternative hydrogen bonding pattern". Nucleic Acids Research. 34 (21): 6095–101. doi:10.1093/nar/gkl633. PMC 1635279. PMID 17074747. https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1635279
Yang, Zunyi; Chen, Fei; Alvarado, J. Brian; Benner, Steven A. (28 September 2011). "Amplification, Mutation, and Sequencing of a Six-Letter Synthetic Genetic System". Journal of the American Chemical Society. 133 (38): 15105–15112. Bibcode:2011JAChS.13315105Y. doi:10.1021/ja204910n. PMC 3427765. PMID 21842904. https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3427765
Merritt, Kristen K; Bradley, Kevin M; Hutter, Daniel; Matsuura, Mariko F; Rowold, Diane J; Benner, Steven A (9 October 2014). "Autonomous assembly of synthetic oligonucleotides built from an expanded DNA alphabet. Total synthesis of a gene encoding kanamycin resistance". Beilstein Journal of Organic Chemistry. 10: 2348–2360. doi:10.3762/bjoc.10.245. PMC 4222377. PMID 25383105. https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4222377
Lloyd, Robin (February 14, 2009). "New Artificial DNA Points to Alien Life". LiveScience. Retrieved 5 July 2016. http://www.livescience.com/3332-artificial-dna-points-alien-life.html
Laos, Roberto; Thomson, J. Michael; Benner, Steven A. (31 October 2014). "DNA polymerases engineered by directed evolution to incorporate non-standard nucleotides". Frontiers in Microbiology. 5: 565. doi:10.3389/fmicb.2014.00565. PMC 4215692. PMID 25400626. https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4215692
Committee on the Limits of Organic Life in Planetary Systems, Committee on the Origins and Evolution of Life ; Space Studies Board, Division on Engineering and Physical Sciences ; Board on Life Sciences, Division on Earth and Life Sciences ; National Research Council of the National Academies (2007). "4. Alternatives to Terran Biochemistry in Water". The limits of organic life in planetary systems. Washington, D.C.: National Academies Press. ISBN 978-0-309-10484-5.{{cite book}}: CS1 maint: multiple names: authors list (link) 978-0-309-10484-5
Howgego, Josh (25 February 2014). "On stranger nucleotides". Chemistry World. Retrieved 1 July 2016. http://www.rsc.org/chemistryworld/2014/02/unnatural-dna-base-pairs
Matsuda, Shigeo; Fillo, Jeremiah D.; Henry, Allison A.; Rai, Priyamrada; Wilkens, Steven J.; Dwyer, Tammy J.; Geierstanger, Bernhard H.; Wemmer, David E.; Schultz, Peter G.; Spraggon, Glen; Romesberg, Floyd E. (August 2007). "Efforts toward Expansion of the Genetic Alphabet: Structure and Replication of Unnatural Base Pairs". Journal of the American Chemical Society. 129 (34): 10466–10473. Bibcode:2007JAChS.12910466M. doi:10.1021/ja072276d. PMC 2536688. PMID 17685517. https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2536688
Piccirilli, Joseph A.; Benner, Steven A.; Krauch, Tilman; Moroney, SimonE.; Benner, Steven A. (4 January 1990). "Enzymatic incorporation of a new base pair into DNA and RNA extends the genetic alphabet". Nature. 343 (6253): 33–37. Bibcode:1990Natur.343...33P. doi:10.1038/343033a0. PMID 1688644. S2CID 4363955. /wiki/Bibcode_(identifier)
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Singer, Emily (July 10, 2015). "New Letters Added to the Genetic Alphabet". Quanta Magazine. Retrieved 30 June 2016. https://www.quantamagazine.org/20150710-genetic-alphabet/
Switzer, CY; Moroney, SE; Benner, SA (5 October 1993). "Enzymatic recognition of the base pair between isocytidine and isoguanosine". Biochemistry. 32 (39): 10489–96. CiteSeerX 10.1.1.690.1426. doi:10.1021/bi00090a027. PMID 7691174. /wiki/CiteSeerX_(identifier)
Takezawa, Yusuke; Shionoya, Mitsuhiko (18 December 2012). "Metal-Mediated DNA Base Pairing: Alternatives to Hydrogen-Bonded Watson–Crick Base Pairs". Accounts of Chemical Research. 45 (12): 2066–2076. doi:10.1021/ar200313h. PMID 22452649. /wiki/Doi_(identifier)
Simon, Matthew (2005). Emergent computation emphasizing bioinformatics. New York: AIP Press/Springer Science+Business Media. ISBN 978-0-387-27270-2. 978-0-387-27270-2
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Benner, Steven A.; Hutter, Daniel (February 2002). "Phosphates, DNA, and the Search for Nonterrean Life: A Second Generation Model for Genetic Molecules" (PDF). Bioorganic Chemistry. 30 (1): 62–80. doi:10.1006/bioo.2001.1232. PMID 11955003. Retrieved 6 July 2016. http://www.ffame.org/pubs/Phosphates,%20DNA,%20and%20the%20search%20for%20nonterrean%20life%3A%20A%20second%20generation%20model%20for%20genetic%20molecules.pdf
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"Prof. Gaston Gonnet: when technology holds the key to evolution". ETH Zurich. Retrieved 9 July 2016. https://www.inf.ethz.ch/news-and-events/spotlights/gonnet-farewell.html
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Benner, SA; Gerloff, D (1991). "Patterns of divergence in homologous proteins as indicators of secondary and tertiary structure: a prediction of the structure of the catalytic domain of protein kinases". Advances in Enzyme Regulation. 31: 121–81. doi:10.1016/0065-2571(91)90012-b. PMID 1877385. /wiki/Doi_(identifier)
Gonnet, Gaston H.; Korostensky, Chantal; Benner, Steve (February 2000). "Evaluation Measures of Multiple Sequence Alignments". Journal of Computational Biology. 7 (1–2): 261–276. CiteSeerX 10.1.1.48.4250. doi:10.1089/10665270050081513. PMID 10890401. /wiki/CiteSeerX_(identifier)
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"Genomics Meets Geology". AstroBiology Magazine. September 10, 2001. Retrieved 1 July 2016. http://www.astrobio.net/news-exclusive/genomics-meets-geology/
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Dambrot, Stuart Mason (January 24, 2014). "The ties that bind: Recreating Darwinian ligand evolution in vitro". Phys.org. Retrieved 6 July 2016. http://phys.org/news/2014-01-ties-recreating-darwinian-ligand-evolution.html
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"Award Abstract #0304569 Nanoscale Arrays for Direct RNA Profiling in Single Cells and their Compartments". National Science Foundation. Retrieved 6 July 2016. https://www.nsf.gov/awardsearch/showAward?AWD_ID=0304569
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Jermann, TM; Opitz, JG; Stackhouse, J; Benner, SA (2 March 1995). "Reconstructing the evolutionary history of the artiodactyl ribonuclease superfamily" (PDF). Nature. 374 (6517): 57–9. Bibcode:1995Natur.374...57J. doi:10.1038/374057a0. PMID 7532788. S2CID 4315312. Retrieved 6 July 2016. http://www.ffame.org/pubs/Reconstructing%20the%20evolutionary%20history%20of%20the%20artiodactyl%20ribonuclease%20superfamily.pdf
Benner, SA; Caraco, MD; Thomson, JM; Gaucher, EA (3 May 2002). "Planetary biology--paleontological, geological, and molecular histories of life". Science. 296 (5569): 864–8. Bibcode:2002Sci...296..864B. doi:10.1126/science.1069863. PMID 11988562. S2CID 2316101. /wiki/Bibcode_(identifier)
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Zimmer, Carl (26 June 2004). "What Came Before DNA?". Discover. ISSN 0274-7529. /wiki/Carl_Zimmer
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Clark, Anthony (March 24, 2016). "Local team to head $5.4 million quest to study origins of life on Earth". The Gainesville Sun. Retrieved 30 June 2016. http://www.gainesville.com/news/20160324/local-team-to-head-54-million-quest-to-study-origins-of-life-on-earth
Benner, Steven A. (December 2010). "Defining Life". Astrobiology. 10 (10): 1021–1030. Bibcode:2010AsBio..10.1021B. doi:10.1089/ast.2010.0524. PMC 3005285. PMID 21162682. https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3005285
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Greenwood, Veronique (November 9, 2009). "What Life Leaves Behind What We Know: The search for life beyond our pale blue dot is fraught with dashed hopes. Will the chemical and mineral fingerprints of Earthly organisms apply on other worlds?". Seed Magazine. Archived from the original on November 15, 2009. Retrieved 6 July 2016. https://web.archive.org/web/20091115134105/http://seedmagazine.com/content/article/what_life_leaves_behind
Benner, Steven A.; Hutter, Daniel (2002-02-01). "Phosphates, DNA, and the Search for Nonterrean Life: A Second Generation Model for Genetic Molecules". Bioorganic Chemistry. 30 (1): 62–80. doi:10.1006/bioo.2001.1232. PMID 11955003. https://linkinghub.elsevier.com/retrieve/pii/S0045206801912325
Benner, Steven A. (2023-02-27). "Rethinking nucleic acids from their origins to their applications". Philosophical Transactions of the Royal Society B: Biological Sciences. 378 (1871). doi:10.1098/rstb.2022.0027. ISSN 0962-8436. PMC 9835595. PMID 36633284. https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9835595
Špaček, Jan; Benner, Steven A. (2022-10-01). "Agnostic Life Finder (ALF) for Large-Scale Screening of Martian Life During In Situ Refueling". Astrobiology. 22 (10): 1255–1263. Bibcode:2022AsBio..22.1255S. doi:10.1089/ast.2021.0070. ISSN 1531-1074. PMID 35796703. https://www.liebertpub.com/doi/10.1089/ast.2021.0070