nocodazole has been researched along with Disease Models, Animal in 18 studies
Disease Models, Animal: Naturally-occurring or experimentally-induced animal diseases with pathological processes analogous to human diseases.
Excerpt | Relevance | Reference |
---|---|---|
"The utility of Chinese hamsters as a test species for aneuploidy analysis was studied using four chemicals--vincristine, methyl 2-benzimidazole carbamate (MBC), nocodazole, and cyclophosphamide." | 3.68 | The feasibility of using Chinese hamsters as an animal model for aneuploidy. ( Arras, CA; Jones, RL; Lavappa, KS; Lee, JK; Sheu, CW, 1990) |
"Brucellosis is one of the most important and widespread zoonosis worldwide responsible for serious economic losses and considerable public health burden." | 1.46 | Nocodazole treatment interrupted Brucella abortus invasion in RAW 264.7 cells, and successfully attenuated splenic proliferation with enhanced inflammatory response in mice. ( Arayan, LT; Chang, HH; Hop, HT; Huy, TX; Kim, S; Lee, HJ; Min, W; Reyes, AW, 2017) |
"Nocodazole treatment antagonized JP2 redistribution." | 1.40 | Microtubule-mediated defects in junctophilin-2 trafficking contribute to myocyte transverse-tubule remodeling and Ca2+ handling dysfunction in heart failure. ( Anderson, ME; Chen, B; Gao, S; Guo, A; Hong, J; Johnson, FL; Kutschke, W; Miller, JD; Santana, LF; Song, LS; Wehrens, XH; Weiss, RM; Yuan, C; Zhang, C; Zhu, Y; Zimmerman, K, 2014) |
"Diazoxide (DZ) was used to decrease serum insulin and generate hyperglycemia." | 1.35 | Endothelial heparanase secretion after acute hypoinsulinemia is regulated by glucose and fatty acid. ( Abrahani, A; Deppe, S; Ghosh, S; Kewalramani, G; Kim, MS; Puthanveetil, P; Rodrigues, B; Wang, F, 2009) |
Timeframe | Studies, this research(%) | All Research% |
---|---|---|
pre-1990 | 0 (0.00) | 18.7374 |
1990's | 2 (11.11) | 18.2507 |
2000's | 2 (11.11) | 29.6817 |
2010's | 11 (61.11) | 24.3611 |
2020's | 3 (16.67) | 2.80 |
Authors | Studies |
---|---|
Strobykina, IY | 1 |
Belenok, MG | 1 |
Semenova, MN | 1 |
Semenov, VV | 1 |
Babaev, VM | 1 |
Rizvanov, IKh | 1 |
Mironov, VF | 1 |
Kataev, VE | 1 |
Solinski, HJ | 1 |
Dranchak, P | 1 |
Oliphant, E | 1 |
Gu, X | 1 |
Earnest, TW | 1 |
Braisted, J | 1 |
Inglese, J | 1 |
Hoon, MA | 1 |
Abrams, RPM | 1 |
Yasgar, A | 1 |
Teramoto, T | 1 |
Lee, MH | 1 |
Dorjsuren, D | 1 |
Eastman, RT | 1 |
Malik, N | 1 |
Zakharov, AV | 1 |
Li, W | 1 |
Bachani, M | 1 |
Brimacombe, K | 1 |
Steiner, JP | 1 |
Hall, MD | 1 |
Balasubramanian, A | 1 |
Jadhav, A | 1 |
Padmanabhan, R | 1 |
Simeonov, A | 1 |
Nath, A | 1 |
Ozono, Y | 1 |
Tamura, A | 1 |
Nakayama, S | 1 |
Herawati, E | 1 |
Hanada, Y | 1 |
Ohata, K | 1 |
Takagishi, M | 1 |
Takahashi, M | 1 |
Imai, T | 1 |
Ohta, Y | 1 |
Oshima, K | 1 |
Sato, T | 1 |
Inohara, H | 1 |
Tsukita, S | 1 |
Ding, Y | 1 |
Zhong, Y | 1 |
Baldeshwiler, A | 1 |
Abner, EL | 1 |
Bauer, B | 1 |
Hartz, AMS | 1 |
Cao, XC | 1 |
Pappalardo, LW | 1 |
Waxman, SG | 1 |
Tan, AM | 1 |
You, Z | 1 |
Zhang, S | 1 |
Shen, S | 1 |
Yang, J | 1 |
Ding, W | 1 |
Yang, L | 1 |
Lim, G | 1 |
Doheny, JT | 1 |
Tate, S | 1 |
Chen, L | 1 |
Mao, J | 1 |
Solowska, JM | 1 |
D'Rozario, M | 1 |
Jean, DC | 1 |
Davidson, MW | 1 |
Marenda, DR | 1 |
Baas, PW | 1 |
Zhang, C | 1 |
Chen, B | 1 |
Guo, A | 1 |
Zhu, Y | 1 |
Miller, JD | 1 |
Gao, S | 1 |
Yuan, C | 1 |
Kutschke, W | 1 |
Zimmerman, K | 1 |
Weiss, RM | 1 |
Wehrens, XH | 1 |
Hong, J | 1 |
Johnson, FL | 1 |
Santana, LF | 1 |
Anderson, ME | 1 |
Song, LS | 1 |
Melemedjian, OK | 1 |
Tillu, DV | 1 |
Moy, JK | 1 |
Asiedu, MN | 1 |
Mandell, EK | 1 |
Ghosh, S | 2 |
Dussor, G | 1 |
Price, TJ | 1 |
Vilmont, V | 1 |
Cadot, B | 1 |
Vezin, E | 1 |
Le Grand, F | 1 |
Gomes, ER | 1 |
Reyes, AW | 1 |
Hop, HT | 1 |
Arayan, LT | 1 |
Huy, TX | 1 |
Min, W | 1 |
Lee, HJ | 1 |
Chang, HH | 1 |
Kim, S | 1 |
Jeannotte, AM | 1 |
McCarthy, JG | 1 |
Redei, EE | 1 |
Sidhu, A | 1 |
Wang, F | 1 |
Kim, MS | 1 |
Puthanveetil, P | 1 |
Kewalramani, G | 1 |
Deppe, S | 1 |
Abrahani, A | 1 |
Rodrigues, B | 1 |
Nakayama, K | 1 |
Suzuki, Y | 1 |
Yazawa, I | 1 |
Fassier, C | 1 |
Tarrade, A | 1 |
Peris, L | 1 |
Courageot, S | 1 |
Mailly, P | 1 |
Dalard, C | 1 |
Delga, S | 1 |
Roblot, N | 1 |
Lefèvre, J | 1 |
Job, D | 1 |
Hazan, J | 1 |
Curmi, PA | 1 |
Melki, J | 1 |
Perou, CM | 1 |
Kaplan, J | 1 |
Sheu, CW | 1 |
Lee, JK | 1 |
Arras, CA | 1 |
Jones, RL | 1 |
Lavappa, KS | 1 |
18 other studies available for nocodazole and Disease Models, Animal
Article | Year |
---|---|
Triphenylphosphonium Cations of the Diterpenoid Isosteviol: Synthesis and Antimitotic Activity in a Sea Urchin Embryo Model.
Topics: Animals; Antimitotic Agents; Antineoplastic Agents; Cations; Disease Models, Animal; Diterpenes; Dit | 2015 |
Inhibition of natriuretic peptide receptor 1 reduces itch in mice.
Topics: Animals; Behavior, Animal; Cell-Free System; Dermatitis, Contact; Disease Models, Animal; Ganglia, S | 2019 |
Therapeutic candidates for the Zika virus identified by a high-throughput screen for Zika protease inhibitors.
Topics: Animals; Antiviral Agents; Artificial Intelligence; Chlorocebus aethiops; Disease Models, Animal; Dr | 2020 |
Daple deficiency causes hearing loss in adult mice by inducing defects in cochlear stereocilia and apical microtubules.
Topics: Animals; Carrier Proteins; Cell Membrane; Cochlea; Disease Models, Animal; Evoked Potentials, Audito | 2021 |
Protecting P-glycoprotein at the blood-brain barrier from degradation in an Alzheimer's disease mouse model.
Topics: Alzheimer Disease; Amyloid beta-Peptides; Amyloid beta-Protein Precursor; Animals; ATP Binding Casse | 2021 |
Dendritic spine dysgenesis in superficial dorsal horn sensory neurons after spinal cord injury.
Topics: Analysis of Variance; Animals; Antineoplastic Agents; Dendritic Spines; Disease Models, Animal; Male | 2017 |
Cognitive impairment in a rat model of neuropathic pain: role of hippocampal microtubule stability.
Topics: Animals; Cognitive Dysfunction; Disease Models, Animal; Hippocampus; Learning; Long-Term Potentiatio | 2018 |
Pathogenic mutation of spastin has gain-of-function effects on microtubule dynamics.
Topics: Adenosine Triphosphatases; Animals; Animals, Genetically Modified; Cells, Cultured; Cysteine; Diseas | 2014 |
Microtubule-mediated defects in junctophilin-2 trafficking contribute to myocyte transverse-tubule remodeling and Ca2+ handling dysfunction in heart failure.
Topics: Animals; Calcium Signaling; Cardiomegaly; Cardiomyopathies; Cells, Cultured; Colchicine; Disease Mod | 2014 |
Local translation and retrograde axonal transport of CREB regulates IL-6-induced nociceptive plasticity.
Topics: Animals; Axonal Transport; Brain-Derived Neurotrophic Factor; Cells, Cultured; Colchicine; CREB-Bind | 2014 |
Dynein disruption perturbs post-synaptic components and contributes to impaired MuSK clustering at the NMJ: implication in ALS.
Topics: Agrin; Amyotrophic Lateral Sclerosis; Animals; Cell Differentiation; Cells, Cultured; Disease Models | 2016 |
Nocodazole treatment interrupted Brucella abortus invasion in RAW 264.7 cells, and successfully attenuated splenic proliferation with enhanced inflammatory response in mice.
Topics: Actins; Animals; Anti-Bacterial Agents; Bacterial Adhesion; Bacterial Load; Brucella abortus; Brucel | 2017 |
Desipramine modulation of alpha-, gamma-synuclein, and the norepinephrine transporter in an animal model of depression.
Topics: alpha-Synuclein; Animals; Antidepressive Agents, Tricyclic; Behavior, Animal; beta-Synuclein; Cytosk | 2009 |
Endothelial heparanase secretion after acute hypoinsulinemia is regulated by glucose and fatty acid.
Topics: Animals; Cattle; Cells, Cultured; Cytochalasin D; Cytoskeleton; Diazoxide; Disease Models, Animal; E | 2009 |
Binding of neuronal α-synuclein to β-III tubulin and accumulation in a model of multiple system atrophy.
Topics: alpha-Synuclein; Animals; Cells, Cultured; Disease Models, Animal; Humans; Mice; Mice, Transgenic; M | 2012 |
Microtubule-targeting drugs rescue axonal swellings in cortical neurons from spastin knockout mice.
Topics: Adenosine Triphosphatases; Animals; Axonal Transport; Axons; Cells, Cultured; Cerebral Cortex; Disea | 2013 |
Chediak-Higashi syndrome is not due to a defect in microtubule-based lysosomal mobility.
Topics: Animals; Bone Marrow; Chediak-Higashi Syndrome; Disease Models, Animal; Humans; Lysosomes; Macrophag | 1993 |
The feasibility of using Chinese hamsters as an animal model for aneuploidy.
Topics: Aneuploidy; Animals; Benzimidazoles; Bone Marrow; Carbamates; Cricetinae; Cricetulus; Cyclophosphami | 1990 |