Current Challenges in Antimicrobial Chemotherapy: Focus on [beta]-Lactamase Inhibition

The use of the three classical β-lactamase inhibitors (clavulanic acid, tazobactam and sulbactam) in combination with β-lactam antibacterials is currently the most successful strategy to combat β-lactamase-mediated resistance. However, these inhibitors are efficient in inactivating only class A β-la...

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Veröffentlicht in:Drugs (New York, N.Y.) N.Y.), 2010-04, Vol.70 (6), p.651
Hauptverfasser: Bebrone, Carine, Lassaux, Patricia, Vercheval, Lionel, Sohier, Jean-Sébastien, Jehaes, Adrien, Sauvage, Eric, Galleni, Moreno
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container_issue 6
container_start_page 651
container_title Drugs (New York, N.Y.)
container_volume 70
creator Bebrone, Carine
Lassaux, Patricia
Vercheval, Lionel
Sohier, Jean-Sébastien
Jehaes, Adrien
Sauvage, Eric
Galleni, Moreno
description The use of the three classical β-lactamase inhibitors (clavulanic acid, tazobactam and sulbactam) in combination with β-lactam antibacterials is currently the most successful strategy to combat β-lactamase-mediated resistance. However, these inhibitors are efficient in inactivating only class A β-lactamases and the efficiency of the inhibitor/antibacterial combination can be compromised by several mechanisms, such as the production of naturally resistant class B or class D enzymes, the hyperproduction of AmpC or even the production of evolved inhibitor-resistant class A enzymes. Thus, there is an urgent need for the development of novel inhibitors. For serine active enzymes (classes A, C and D), derivatives of the β-lactam ring such as 6-β-halogenopenicillanates, β-lactam sulfones, penems and oxapenems, monobactams or trinems seem to be potential starting points to design efficient molecules (such as AM-112 and LK-157). Moreover, a promising non-β-lactam molecule, NXL-104, is now under clinical development. In contrast, an ideal inhibitor of metallo-β-lactamases (class B) remains to be found, despite the huge number of potential molecules already described (biphenyl tetrazoles, cysteinyl peptides, mercaptocarboxylates, succinic acid derivatives, etc.). The search for such an inhibitor is complicated by the absence of a covalent intermediate in their catalytic mechanisms and the fact that β-lactam derivatives often behave as substrates rather than as inhibitors. Currently, the most promising broad-spectrum inhibitors of class B enzymes are molecules presenting chelating groups (thiols, carboxylates, etc.) combined with an aromatic group. This review describes all the types of molecules already tested as potential β-lactamase inhibitors and thus constitutes an update of the current status in β-lactamase inhibitor discovery. [PUBLICATION ABSTRACT]
doi_str_mv 10.2165/11318430-000000000-00000
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In contrast, an ideal inhibitor of metallo-β-lactamases (class B) remains to be found, despite the huge number of potential molecules already described (biphenyl tetrazoles, cysteinyl peptides, mercaptocarboxylates, succinic acid derivatives, etc.). The search for such an inhibitor is complicated by the absence of a covalent intermediate in their catalytic mechanisms and the fact that β-lactam derivatives often behave as substrates rather than as inhibitors. Currently, the most promising broad-spectrum inhibitors of class B enzymes are molecules presenting chelating groups (thiols, carboxylates, etc.) combined with an aromatic group. This review describes all the types of molecules already tested as potential β-lactamase inhibitors and thus constitutes an update of the current status in β-lactamase inhibitor discovery. 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