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The presentation, diagnostic evaluation, treatment, and 5 years follow-up of a 12-year-old Arabian-Saddlebred cross gelding with neck pain and stiffness, attributable to a fracture of the third cervical vertebrae (C3), is described. Initial cervical spinal radiographs revealed a concave defect in the ventral aspect of the cranial end plate of C3. However, both this finding and ultrasonographic imaging of the area were inconclusive for a fracture. Nuclear scintigraphy revealed that the lesion was metabolically active, prompting computed tomographic imaging that revealed a fracture of C3. Sequential radiographs documented progressive fusion of C2-C3 and no neurological deficits developed over the 5 years after the injury. Cervical vertebral injuries in horses can lead to various clinical signs including ataxia, weakness, and neck stiffness or pain. Diagnosis with cervical radiographs alone can be challenging and, in some cases as the horse in this report, multiple imaging modalities may be required to establish a definitive diagnosis. Horses without neurological signs may recover successfully with conservative medical management, which was performed in this case. 相似文献
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应用常染色体上的标记基因研究能够加快数量性状的遗传进展。亲代由标记基因遗传给后代的加性遗传方差值可以用来测定标记基因这种效益。分别在个体水平上以及在复合连续平衡的分离群体水平上建立了标记基因加性遗传方差值的理论方程。这些方程包括与标记基因连锁的数量性状位点数、这些数量性状位点的效应值以及与标记基因有关的重组率。并就分离群体中标记基因加性遗传方差的期望值进行了推导。在分离群体的系谱选择方案中,常染色体上遗传方差中绝大部分与位于该染色体上的标记基因相关。对于牛的一个平均长度染色体来讲,这部分值大约是该染色体孟德尔分离方差值的40% 。标记基因的位置效应和干扰因素对这一期望值的影响是很小的,而染色体的长度对期望方差值影响很大。如果标记基因缺乏多态型以及染色体替代效应估计偏差会大大降低MAS的选择效果。常染色体上标记基因遗传方差期望值的大小表明:即使当标记基因处在一个非活动位点,在分离群体中,仍有较大的染色体替代效应存在。 相似文献
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Donald E. Thrall DVM PHD Margaret C. McEntee DVM† Carol Novotney DVM† Marlene L. Hauck DVM† Rodney L. Page DVM MS† 《Veterinary radiology & ultrasound》1993,34(4):295-300
Eighteen dogs with malignant nasal cavity tumors were treated with radiation therapy, including a boost technique. Three 3:0 Gy boost doses were added to a treatment protocol consisting of sixteen 3.0 Gy daily fractions, bringing the total dose to 57 Gy. This boost technique was implemented without an associated increase in overall treatment time by giving the boost doses on a twice-a-day basis. Boost doses were given during the first half of the radiation therapy period. The treatment was completed as planned in 16 of the 18 dogs; two dogs received lower doses (51 and 54 Gy). Median survival was 177 days, poorer than in some other reported studies of nasal tumor irradiation. Acute effects were unacceptable, with 11 of the 18 dogs developing severe mucositis, desquamation, edema, swelling, and pruritus. The extensive nature of the acute reactions compromised assessment of the effect of the increased radiation dose on the tumor. Although there is justification for assessing more aggressive radiation protocols in canine nasal tumor patients, total doses approximating 60 Gy can not be given as described because of the inability of acutely responding normal tissues to compensate. 相似文献
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RAPD技术对地方鸡种群体遗传结构的分析 总被引:16,自引:1,他引:15
利用RAPD技术对4个地方鸡种和1个引进鸡种的群体遗传结构进行分析,通过筛选的5个随机引物OPH-02、OPH-05、OPH-13、OPH-16、OPG-07对5个鸡种的池DNA进行多态性研究,结果表明:5个引物共产生条带61个,扩增产物片段的长度一般从150bp-4kb。 相似文献
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Modern biotechnology promises a number of new applications in animal breeding and production. Although conventional pig breeding has achieved a high level of efficiency and productivity numerous problems have been encountered with animal health and the loss of meat quality. Selection based on phenotypic performance data of individual animals does not take into account the importance of specific genes and their relevance within a complex regulatory system. In most cases it is therefore difficult to trace back the genetic origins of clinically important disorders. The application of genetic engineering techniques in pig production will facilitate diagnosis, improvement of productivity, and animal health by allowing direct genetic manipulation. Attention must be focussed on the physical and genetic analysis of the procine genome. The isolation and characterisation of genes, DNA-markers, polymorphic DNA-fragments, and their chromosomal assignment will be important prerequisites and tools for the elucidation of genetic disorders. Especially the detection of heterozygous carriers of recessive disorders and their elimination from the breeding stock will increase selection accuracy and decrease the generation intervals. But also the rapid and simple detection of infectious diseases, which is sometimes difficult if not impossible at present, will improve animal health and welfare. Although the production of transgenic animals either by DNA-microinjection into zygotes or the use of embryonal stem cells manipulated in vitro is less straightforward than DNA-based diagnosis it will play an important role in the direct manipulation of the porcine genome and genes. Breeding programmes including the use of transgenic livestock have already been developed. There is no doubt that genetic engineering has reached a degree of practical feasibility, allowing it to play an important role in pig breeding in particular and animal production in general. 相似文献
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