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  • 68902小图
  • 68902

Large Animal Stereotaxic Instruments

Large animal stereotaxic instrument is suitable for cats, dogs, monkeys, pigs, etc. It contains a two-dimensional manipulator (X, Z axis). The accuracy of the non-digital model is 100 μm, and the accuracy of the digital model is 10 μm. Two kinds of adaptors are optional, the 68081 monkey adaptor is generally suitable for large animals of 10-30kg, and the 68041 is generally suitable for large animals below 10kg.

Technical Specifications

  • Technical Parameters
  • Order Information
  • Manual
  • Accessories

1. Adaptors are available for dogs, monkeys, pigs, and other large animals.

2. Y-axis slide design, longer moving range: ± 100mm, 1mm resolution. Optional AP Micro-driver, the resolution of Y-axis promoted to 50μm.

3. Working distance in X-axis and Z-axis dimension is 80 mm with precise alignment to 0.1mm resolution.

4. Holds up to six manipulator arms for more independent operations.

5. Unique jaw plate design better stabilizes the heads of large animals of varying weights

6. Vertical direction: 180° rotation and lock at any angles.

7. Horizontal direction: 360° rotation and lock at any angles.

8. Dual-lead screws ensure stable, accurate and smooth manipulation.

9.Accuracy and flexibility can be maintained at variable temperatures.

10. Extended base plate (400mm x 255mm) is applicable for a variety of animal sizes.

11. Unique anti-clockwise UP mark engraved in the knob prevents incorrect operation.

12. Vertical lock and fixing knob are separated to ensure accurate function at any angle.

13. Laser engraved scales enable comfortable reading.

14. Ear bar locked plate pressing instead of clamping ensures more stability.

15. Syringe pump, micro camera and drill can be attached to instruments.

CategoryModelProduct DescriptionRemark

Stereotaxic host
(without accessories)
68813 Stereotaxic for Large Animals, SGL M. Standard configuration, non-digital display model (accuracy 100μm), including 68868N base, 68941 2-axis manipulator-left, without adaptor, ear bars and holder.
68814 Stereotaxic for Large Animals, Dual M. Standard configuration, non-digital display model (accuracy 100μm), including 68868N base, 689412-axis manipulator-left, 68942 2-axis manipulator-right, without adaptor, ear bars and holder.
68815 Stereotaxic for Large Animals, SGL M, Digital Standard configuration, digital display model (accuracy 10μm),
including 68868N base, 68944 2-axis digital manipulator-left, without adaptor, ear bars and holder.
68816 Stereotaxic for Large Animals, Dual M, Digital Standard configuration, digital display model (accuracy 10μm),
including 68868N base, 68944 2-axis digital manipulator-left, 68945 2-axis digital manipulator-right, without adaptor, ear bars and holder.
Required accessories (optional)* 68041 Cat/Monkey Adaptor It is suitable for large animal stereotaxic, and is generally used for cats, dogs, monkeys, etc. under 10kg. Before purchasing, please confirm the animal’s head width, distance from nose
to eyes, mouth width and other information with RWD.
68081 Dog/Monkey/Pig Adaptor It is suitable for large animal stereotaxic, and is generally used for 10-30 kg cats, dogs, monkeys, etc. Before purchasing, ple se confirm the animal’s head width, distance from nose to eyes, mouth width and other information with RWD.
68303 Cat/Monkey 18° Ear Bars
68304 Cat/Monkey 45° Ear Bars
68201 Standard Probe Holder-Corner, clamping range: 0.3-1.5mm.
68217 Cannula Holder, clamping diameter: 3.5mm. The clamping part is made of plastic.
68205 Cannula Holder, clamping diameter: 3.5mm. The clamping part is made of metal.
68214 Ceramic Ferrule Holder, clamping diameter: 1.25mm.
68215 Ceramic Ferrule Holder, clamping diameter: 2.5mm.
68206 General Probe Holder, clamping range: 3-12mm.
68218 Syringe Holder, the syringe barrel clamping range is 6mm-12mm, and
the syringe needle clamping range is 0.3mm-1.5mm.
68605 Microdrill Holder, clamping diameter: 14.5mm. Suitable for 78001 microdrill.

*Indicates that other specifications can be selected, which can be viewed from the product catalog of RWD.

Articles

  1. Diao, Y., Cui, L., Chen, Y., Burbridge, T. J., Han, W., Wirth, B., … & Zhang, J. (2018). Reciprocal connections between cortex and thalamus contribute to retinal axon targeting to dorsal lateral geniculate nucleus. Cerebral Cortex, 28(4), 1168-1182.
  2. Fan, X. C., Fu, S., Liu, F. Y., Cui, S., Yi, M., & Wan, Y. (2018). Hypersensitivity of prelimbic cortex neurons contributes to aggravated nociceptive responses in rats with experience of chronic inflammatory pain. Frontiers in molecular neuroscience, 11, 85.
  3. Liu, Y., Lai, S., Ma, W., Ke, W., Zhang, C., Liu, S., … & Shu, Y. (2017). CDYL suppresses epileptogenesis in mice through repression of axonal Nav1. 6 sodium channel expression. Nature communications, 8(1), 1-17.
  4. Tang, Y., Lin, Y. H., Ni, H. Y., Dong, J., Yuan, H. J., Zhang, Y., … & Chang, L. (2017). Inhibiting Histone Deacetylase 2 (HDAC 2) Promotes Functional Recovery From Stroke. Journal of the American Heart Association, 6(10), e007236.
  5. Huang, L., Yuan, T., Tan, M., Xi, Y., Hu, Y., Tao, Q., … & Luo, M. (2017). A retinoraphe projection regulates serotonergic activity and looming-evoked defensive behaviour. Nature communications, 8(1), 1-13.
  6. Zhu, M., Li, H., Gyanwali, B., He, G., Qi, C., Yang, X., … & Tang, A. (2017). Auditory brainstem responses after electrolytic lesions in bilateral subdivisions of the medial geniculate body of tree shrews. Neurological Sciences, 38(9), 1617-1628.
  7. Lei, Z., Wang, D., Chen, N., Ma, K., Lu, W., Song, Z., … & Wang, J. H. (2017). Synapse innervation and associative memory cell are recruited for integrative storage of whisker and odor signals in the barrel cortex through miRNA-mediated processes. Frontiers in cellular neuroscience, 11, 316.
  8. Zhou, H., Xiong, G. J., Jing, L., Song, N. N., Pu, D. L., Tang, X., … & Richter-Levin, G. (2017). The interhemispheric CA1 circuit governs rapid generalisation but not fear memory. Nature communications, 8(1), 1-10.
  9. Zhang, J., Liu, H., Du, X., Guo, Y., Chen, X., Wang, S., … & Zhang, W. (2017). Increasing of blood-brain tumor barrier permeability through transcellular and paracellular pathways by microbubble-enhanced diagnostic ultrasound in a C6 glioma model. Frontiers in neuroscience, 11, 86.
  10. Li, G. F., Zhao, H. X., Zhou, H., Yan, F., Wang, J. Y., Xu, C. X., … & Zhang, H. L. (2016). Improved anatomical specificity of non-invasive neuro-stimulation by high frequency (5 MHz) ultrasound. Scientific reports, 6(1), 1-11.
  11. Liu, M. G., Li, H. S., Li, W. G., Wu, Y. J., Deng, S. N., Huang, C., … & Xu, T. L. (2016). Acid-sensing ion channel 1a contributes to hippocampal LTP inducibility through multiple mechanisms. Scientific reports, 6, 23350.
  12. Zhao, Baisong, et al. “Hyperbaric oxygen pretreatment improves cognition and reduces hippocampal damage via p38 mitogen-activated protein kinase in a rat model.” Yonsei medical journal 58.1 (2017): 131-138.
  13. Zhao, Yunan, et al. “Decreased glycogen content might contribute to chronic stress-induced atrophy of hippocampal astrocyte volume and depression-like behavior in rats.” Scientific reports 7 (2017): 43192.
  14. Espinosa, P., Silva, R. A., Sanguinetti, N. K., Venegas, F. C., Riquelme, R., González, L. F., … & Sotomayor-Zárate, R. (2016). Programming of dopaminergic neurons by neonatal sex hormone exposure: effects on dopamine content and tyrosine hydroxylase expression in adult male rats. Neural plasticity, 2016.
  15. Li, Wei-Guang, et al. “ASIC1a regulates insular long-term depression and is required for the extinction of conditioned taste aversion.” Nature communications 7.1 (2016): 1-15.
  16. Wang, G. Q., Cen, C., Li, C., Cao, S., Wang, N., Zhou, Z., … & Wang, J. (2015). Deactivation of excitatory neurons in the prelimbic cortex via Cdk5 promotes pain sensation and anxiety. Nature communications, 6(1), 1-16.

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