Integrating multiplexing into confineable gene drives effectively overrides resistance in Anopheles stephensi
Abstract
Abstract Anopheles stephensi is a major malaria vector mainly present in southern Asia and the Arabian Peninsula. Since 2012 it has invaded several countries of eastern Africa, stimulating urgent efforts to develop more efficient strategies for vector control such as CRISPR/Cas9-based homing gene drives. Target site resistance due to end-joining repair is a significant challenge to the deployment of these systems. The use of multiple sgRNAs has the potential to solve this issue. Here we perform experimental crosses to assess the homing and cutting efficiency of both classical (e.g. four adjacent sgRNAs all in one construct) and additive (e.g. separate constructs each expressing a single sgRNA) multiplexing strategies targeting the cardinal locus, in the presence and absence of a resistance allele. We find resistance alleles at one sgRNA target site can be mitigated by the presence of the additional sgRNAs with either strategy, and do not significantly reduce the homing efficiency for either strategy, validating their effectiveness. Further modelling using parameters derived from the strains generated indicates that while both strategies can overcome resistance allele formation, the fitness of the drive-carrying alleles is a critical factor in determining the overall performance and persistence of a split drive.
Article Details
Authors (17)
Mireia Larrosa-Godall
Lewis Shackleford
Matthew P. Edgington
Philip T. Leftwich
James C. Y. Luk
Joshua Southworth
Stewart Rosell
Jake T. Creasey
Jack M. Aked
Katherine Nevard
Alexander Dodds
Morgan McKee
Institute of Inorganic Chemistry, University of Bonn, Gerhard-Domagk-Str. 1, 53121 Bonn, Germany
Eunice Adedeji
Estela Gonzalez
Joshua X. D. Ang
Michelle A. E. Anderson
Luke Alphey