An automated, high-resolution phenotypic assay for adult Brugia malayi and microfilaria
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[1] F. Cho-Ngwa,et al. Development and validation of small animal models for onchocerciasis and loiasis microfilaricide discovery , 2023, PLoS neglected tropical diseases.
[2] J. Keiser,et al. Whole-organism phenotypic screening methods used in early-phase anthelmintic drug discovery. , 2022, Biotechnology advances.
[3] A. Hoerauf,et al. Evaluation of the in vitro susceptibility of various filarial nematodes to emodepside , 2021, International journal for parasitology. Drugs and drug resistance.
[4] Godfred A. Ayimele,et al. Filaricidal activity of Daniellia oliveri and Psorospermum febrifugum extracts , 2021, Parasites & vectors.
[5] T. Nolan,et al. A novel assay to isolate and quantify third-stage Dirofilaria immitis and Brugia malayi larvae emerging from individual Aedes aegypti , 2021, Parasites & Vectors.
[6] M. Mitreva,et al. An Integrated Approach to Identify New Anti-Filarial Leads to Treat River Blindness, a Neglected Tropical Disease , 2021, Pathogens.
[7] C. Dobson,et al. Assessing motor-related phenotypes of Caenorhabditis elegans with the wide field-of-view nematode tracking platform , 2020, Nature Protocols.
[8] G. Tylka,et al. The Effects of ILeVO and VOTiVO on Root Penetration and Behavior of the Soybean Cyst Nematode, Heterodera glycines. , 2019, Plant disease.
[9] G. Tylka,et al. Avicta and Clariva Affect the Biology of the Soybean Cyst Nematode, Heterodera glycines. , 2018, Plant disease.
[10] Taejoon Kong,et al. Flexible and disposable paper- and plastic-based gel micropads for nematode handling, imaging, and chemical testing , 2017, APL bioengineering.
[11] Chih-Ming Ho,et al. Effective drug combination for Caenorhabditis elegans nematodes discovered by output-driven feedback system control technique , 2017, Science Advances.
[12] Anwen E. Brown,et al. An automated high-throughput system for phenotypic screening of chemical libraries on C. elegans and parasitic nematodes , 2017, bioRxiv.
[13] Weam I Zaky,et al. The Effects of Ivermectin on Brugia malayi Females In Vitro: A Transcriptomic Approach , 2016, PLoS neglected tropical diseases.
[14] S. Oliver,et al. Yeast-Based High-Throughput Screens to Identify Novel Compounds Active against Brugia malayi , 2016, PLoS neglected tropical diseases.
[15] M. Zamanian,et al. Release of Small RNA-containing Exosome-like Vesicles from the Human Filarial Parasite Brugia malayi , 2015, PLoS neglected tropical diseases.
[16] A. Wolstenholme,et al. Transient effects of levamisole on Brugia malayi microfilariae , 2015, Invertebrate Neuroscience.
[17] C. Caffrey,et al. Anthelmintic Drug Discovery: Into the Future , 2015, The Journal of parasitology.
[18] J. B. Dixon,et al. An Integrated In Vitro Imaging Platform for Characterizing Filarial Parasite Behavior within a Multicellular Microenvironment , 2014, PLoS neglected tropical diseases.
[19] A. Hoerauf,et al. Repurposing of approved drugs from the human pharmacopoeia to target Wolbachia endosymbionts of onchocerciasis and lymphatic filariasis , 2014, International journal for parasitology. Drugs and drug resistance.
[20] Ray Kaplan,et al. Utilization of computer processed high definition video imaging for measuring motility of microscopic nematode stages on a quantitative scale: “The Worminator” , 2014, International journal for parasitology. Drugs and drug resistance.
[21] K. Lüersen,et al. Gait-specific adaptation of locomotor activity in response to dietary restriction in Caenorhabditis elegans , 2014, Journal of Experimental Biology.
[22] K. Johnston,et al. Overcoming the Challenges of Drug Discovery for Neglected Tropical Diseases , 2014, Journal of biomolecular screening.
[23] Cori Bargmann,et al. Temporal Responses of C. elegans Chemosensory Neurons Are Preserved in Behavioral Dynamics , 2014, Neuron.
[24] Roy J. Lycke,et al. Microfluidics-enabled method to identify modes of Caenorhabditis elegans paralysis in four anthelmintics. , 2013, Biomicrofluidics.
[25] A. Parashar,et al. Multiparameter behavioral analyses provide insights to mechanisms of cyanide resistance in Caenorhabditis elegans. , 2013, Toxicological sciences : an official journal of the Society of Toxicology.
[26] Zhao-Wen Wang,et al. Track-A-Worm, An Open-Source System for Quantitative Assessment of C. elegans Locomotory and Bending Behavior , 2013, PloS one.
[27] Jun Zhang,et al. Experiments and theory of undulatory locomotion in a simple structured medium , 2012, Journal of The Royal Society Interface.
[28] Todd Lamitina,et al. Biomechanical Profiling of Caenorhabditis elegans Motility , 2012, Genetics.
[29] Jiri Gut,et al. WormAssay: A Novel Computer Application for Whole-Plate Motion-based Screening of Macroscopic Parasites , 2012, PLoS neglected tropical diseases.
[30] S. Pandey,et al. Decision-making by nematodes in complex microfluidic mazes , 2011 .
[31] Santosh Pandey,et al. A microfluidic platform for high-sensitivity, real-time drug screening on C. elegans and parasitic nematodes. , 2011, Lab on a chip.
[32] Santosh Pandey,et al. Amplitude-modulated sinusoidal microchannels for observing adaptability in C. elegans locomotion. , 2011, Biomicrofluidics.
[33] Cori Bargmann,et al. High-content behavioral analysis of Caenorhabditis elegans in precise spatiotemporal chemical environments , 2011, Nature Methods.
[34] John A. Carr,et al. Unidirectional, electrotactic-response valve for Caenorhabditis elegans in microfluidic devices , 2011 .
[35] Alex Loukas,et al. A Novel High Throughput Assay for Anthelmintic Drug Screening and Resistance Diagnosis by Real-Time Monitoring of Parasite Motility , 2010, PLoS neglected tropical diseases.
[36] Santosh Pandey,et al. Microfluidic bioassay to characterize parasitic nematode phenotype and anthelmintic resistance , 2010, Parasitology.
[37] B. F. Ardelli,et al. Brugia malayi: in vitro effects of ivermectin and moxidectin on adults and microfilariae. , 2010, Experimental parasitology.
[38] Kazushi Yoshida,et al. Parallel Use of Two Behavioral Mechanisms for Chemotaxis in Caenorhabditis elegans , 2009, The Journal of Neuroscience.
[39] Pamela Cosman,et al. Automated detection and analysis of foraging behavior in Caenorhabditis elegans , 2008, Journal of Neuroscience Methods.
[40] Daniel Ramot,et al. The Parallel Worm Tracker: A Platform for Measuring Average Speed and Drug-Induced Paralysis in Nematodes , 2008, PloS one.
[41] J. McCarter,et al. Ivermectin Resistance in Onchocerca volvulus: Toward a Genetic Basis , 2007, PLoS neglected tropical diseases.
[42] Christopher J. Cronin,et al. An automated system for measuring parameters of nematode sinusoidal movement , 2005, BMC genetics.
[43] S. Babu,et al. Development of a serum-free system for the in vitro cultivation of Brugia malayi infective-stage larvae. , 2000, Experimental parasitology.
[44] J. Leger. Menger curvature and rectifiability , 1999, math/9905212.
[45] E. Lacey,et al. Detection of resistance to ivermectin in Haemonchus contortus. , 1991, International journal for parasitology.
[46] C. Dolea,et al. World Health Organization , 1949, International Organization.
[47] S. Thomas,et al. Optimization of culture and analysis methods for enhancing long-term Brugia malayi survival, molting and motility in vitro , 2018 .
[48] R. Rao,et al. Brugia malayi: Effects of nitazoxanide and tizoxanide on adult worms and microfilariae of filarial nematodes. , 2009, Experimental parasitology.