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Wheeler, S.

Publications and source records attributed to Wheeler, S..

2 recordsLinked to original sources

Engineered biological neural networks on high density CMOS micro electrode arrays

In bottom-up neuroscience, questions on neural information processing are addressed by engineering small but reproducible biological neural networks of defined network topology in vitro. The network topology can be controlled by culturing neurons within polydimethylsiloxane (PDMS) microstructures that are combined with microelectrode arrays (MEAs) for electric access to the network. However, currently used glass MEAs are limited to 256 electrodes and pose a limitation to the spatial resolution as well as the design of more complex microstructures. The use of high density complementary metal-oxide-semiconductor (CMOS) MEAs greatly increases the spatiotemporal resolution, enabling sub-cellular readout and stimulation of neurons in defined neural networks. Unfortunately, the non-planar surface of CMOS MEAs complicates the attachment of PDMS microstructures. To overcome the problem of axons escaping the microstructures through the ridges of the CMOS MEA, we stamp-transferred a thin film of hexane-diluted PDMS onto the array such that the PDMS filled the ridges at the contact surface of the microstructures without clogging the axon guidance channels. Moreover, we provide an impedance-based method to visualize the exact location of the microstructures on the MEA and show that our method can confine axonal growth within the PDMS microstructures. Finally, the high spatiotemporal resolution of the CMOS MEA enabled us to show that we can guide action potentials using the unidirectional topology of our circular multi-node microstructure.

neuroscience↗

Quantitative reverse transcription PCR assay to detect pyrethroid resistance in Culex mosquitoes

Pyrethroid insecticides are widely used to control mosquitoes that transmit diseases such as West Nile virus (WNV) to humans. A single nucleotide polymorphism (SNP) in the knockdown resistance locus (kdr) of the voltage gated sodium channel (Vgsc) gene of Culex mosquitoes confers knockdown resistance to pyrethroids. PCR-based assays that detect these SNPs in Culex species are currently available for Culex pipiens Linnaeus and Culex quinquefasciatus Say. RNAseq was employed to sequence the coding region of Vgsc for Culex tarsalis Coquillett and Culex erythrothorax Dyar, two WNV vectors. We utilized the cDNA sequence to develop a quantitative reverse transcriptase PCR assay that detects the L1014F mutation in the kdr of Vgsc. Because this locus is conserved, the assay successfully detected the SNPs in multiple Culex spp. vectors of WNV in the United States. The resulting Culex RTkdr assay was validated using quantitative PCR, CDC bottle bioassays, and sequencing of PCR products. Using sequencing, we determined the accuracy of the Culex RTkdr assay was 99%. Pyrethroid resistance was more common among Cx. pipiens than other Culex spp. and co-occured with agriculture. We anticipate that public health and vector control agencies may utilize the Culex RTkdr assay to map the distribution of pyrethroid resistance in Culex species to more efficiently control mosquitoes and the diseases they transmit.

ecology↗