Please use this identifier to cite or link to this item: https://hdl.handle.net/1959.11/28334
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dc.contributor.authorGlover, Stephen Aen
dc.date.accessioned2020-03-31T02:43:09Z-
dc.date.available2020-03-31T02:43:09Z-
dc.date.issued2019-08-28-
dc.identifier.citationPhysical Chemistry Chemical Physics, 21(32), p. 18012-18025en
dc.identifier.issn1463-9084en
dc.identifier.issn1463-9076en
dc.identifier.urihttps://hdl.handle.net/1959.11/28334-
dc.description.abstractThe nature of amide resonance in the β-lactam ring of β-propiolactams and penicillin type structures has been evaluated by the Mucsi hydrogenation method on the one hand, and isodesmic trans-amidation (TA) and the carbonyl substitution nitrogen atom replacement (COSNAR) methods on the other hand. The discrepancy between the two approaches points to two errors, one arithmetic and the other conceptual, in the manner in which the hydrogenation method is applied to β-lactams and which leads to much lower resonance stabilisation and amidicities than found by the TA and COSNAR methodologies. Correction of these errors yields amidicities in line with the TA and COSNAR results demonstrating that amide bonds in simple β-propiolactams are not weakened by strain relative to normal amides such as N,N-dimethylacetamide. Mucsi's results for penicillin are similarly in error, critically so in light of their use of the drastically reduced resonance in rationalising their proposed mechanism of reaction of the antibiotic with transpeptidase. Correction of the errors in application to penicillin-models points to other difficulties in applying the methodology to complex molecules. A detailed analysis of penicillin-type structures has been carried out using the reliable TA and COSNAR methods, which both point to relatively modest reductions in amidicity or resonance stabilisation in accordance with the known stability of the penam-type structures. At the very least, penicillin retains about 60% the resonance of N,N-dimethylacetamide in stark contrast to the erroneous -36% reported from the hydrogenation method.en
dc.languageenen
dc.publisherRoyal Society of Chemistryen
dc.relation.ispartofPhysical Chemistry Chemical Physicsen
dc.titleComment on "Penicillin's catalytic mechanism revealed by inelastic neutrons and quantum chemical theory" by Z. Mucsi, G. A. Chass, P. Abranyi-Balogh, B. Jojart, D.-C. Fang, A. J. Ramirez-Cuesta, B. Viskolczc and I. G. Csizmadia, Phys. Chem. Chem. Phys., 2013, 15, 20447en
dc.typeJournal Articleen
dc.identifier.doi10.1039/c8cp02413hen
dc.identifier.pmid31363727en
local.contributor.firstnameStephen Aen
local.subject.for2008030401 Biologically Active Moleculesen
local.subject.for2008030505 Physical Organic Chemistryen
local.subject.for2008030799 Theoretical and Computational Chemistry not elsewhere classifieden
local.subject.seo2008860803 Human Pharmaceutical Treatments (e.g. Antibiotics)en
local.profile.schoolSchool of Science and Technologyen
local.profile.emailsglover@une.edu.auen
local.output.categoryC1en
local.record.placeauen
local.record.institutionUniversity of New Englanden
local.publisher.placeUnited Kingdomen
local.format.startpage18012en
local.format.endpage18025en
local.identifier.scopusid85071232151en
local.peerreviewedYesen
local.identifier.volume21en
local.identifier.issue32en
local.contributor.lastnameGloveren
dc.identifier.staffune-id:sgloveren
local.profile.orcid0000-0002-9344-8669en
local.profile.roleauthoren
local.identifier.unepublicationidune:1959.11/28334en
dc.identifier.academiclevelAcademicen
local.title.maintitleComment on "Penicillin's catalytic mechanism revealed by inelastic neutrons and quantum chemical theory" by Z. Mucsi, G. A. Chass, P. Abranyi-Balogh, B. Jojart, D.-C. Fang, A. J. Ramirez-Cuesta, B. Viskolczc and I. G. Csizmadia, Phys. Chem. Chem. Phys., 2013, 15, 20447en
local.output.categorydescriptionC1 Refereed Article in a Scholarly Journalen
local.search.authorGlover, Stephen Aen
local.istranslatedNoen
local.uneassociationYesen
local.atsiresearchNoen
local.sensitive.culturalNoen
local.identifier.wosid000481777100051en
local.year.published2019en
local.fileurl.closedpublishedhttps://rune.une.edu.au/web/retrieve/b4ddb4d4-eb1e-4f95-bf72-7340993ae344en
local.subject.for2020340401 Biologically active moleculesen
local.subject.for2020340505 Physical organic chemistryen
local.subject.for2020340799 Theoretical and computational chemistry not elsewhere classifieden
local.subject.seo2020240803 Human pharmaceutical treatmentsen
dc.notification.token0ea36abd-0d14-4392-80ea-aab428fb9dc9en
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