Abstract
An understanding of the mechanisms of virologic cross-resistance between human immunodeficiency virus type 1 protease inhibitors is important for the establishment of effective treatment strategies for patients who no longer respond to their initial protease inhibitor. Protease gene sequencing results from patients treated with saquinavir showed significant increases in the frequency of the G48V protease mutation in patients receiving higher doses of the drug. In addition, all six patients who developed the G48V mutation during saquinavir therapy developed the V82A mutation either on continued saquinavir or after a switch to nelfinavir or indinavir. In vitro susceptibility assays showed that all 13 isolates with reduced susceptibilities to two or more protease inhibitors had either the G48V or L90M mutation, along with an average of six other protease mutations. Reduced susceptibility to nelfinavir was found in 14 isolates, but only 1 possessed the D30N mutation. These results suggest that mutations selected in vivo by initial saquinavir therapy may provide more cross-resistance to the other protease inhibitors than has been previously reported.
MeSH Terms
Genome, Viral
HIV Infections/drug therapy,virology
HIV Protease/genetics
HIV Protease Inhibitors/pharmacology,therapeutic use
HIV-1/drug effects,genetics,isolation & purification
Humans
Time Factors
Chemicals
HIV Protease Inhibitors
HIV Protease
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Winters M A
Center for AIDS Research at Stanford, Stanford University, Stanford, California 94305, USA. mawint@stanford.edu
Schapiro J M
Lawrence J
Merigan T C
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