Macklis J D
Department of Neurology, Harvard Medical School, Boston, Massachusetts.
J Neurosci. 1993 Sep;13(9):3848-63. doi: 10.1523/JNEUROSCI.13-09-03848.1993.
Selective degeneration of neocortical callosal pyramidal neurons by noninvasive laser illumination was used for directed studies of neocortical transplantation, to test the hypothesis that transplanted embryonic neurons may seek to restore normal cytoarchitecture within an appropriately permissive local environment. At long wavelengths that penetrate through tissue without major absorption, photolysis can cause extremely selective degeneration to desired subpopulations of targeted neurons in vivo (Macklis and Madison, 1991; Madison and Macklis, 1993). Cell death is geographically defined and slowly progressive, allowing control over the anatomical substrate for transplantation. Targeting occurs by retrograde incorporation of cytolytic chromophores that are activated by specific-wavelength light. Intermixed neurons, glia, axons, blood vessels, and connective tissue remain intact. Degeneration was effected within neocortical lamina II/III of neonatal mouse pups following targeting in utero or early postnatally with photoactive nanospheres. Total neuron density was reduced typically by 25-30% within defined areas, with approximately 60% loss of large projection neurons and no change in the number of small, presumptive interneurons. Embryonic day 17 neocortical cell suspensions, which included recently postmitotic neurons destined to form lamina II/III, were transplanted lateral to these regions of ongoing neuron degeneration in juvenile mice. Cellular injections spanned laminae II-V, to provide donor neurons with both lateral and laminar choice for possible migration and integration. Donor cells were labeled in vitro with unique fluorescent and electron-dense nanospheres that allowed distinct identification of donor cells at both light and electron microscopic levels. Control experiments included neocortical transplants into intact age-matched hosts, into hosts with kainic acid lesions to neocortex, or distant to the region of photolytic neuronal degeneration; embryonic cerebellar transplants to the regions of selective photolytic degeneration; and grafts of hypoosmotically lysed neocortical cells to lesioned regions. After survival times of 1 hr to 12 weeks, labeled neurons were identified morphologically and positions were digitized for qualitative and quantitative analysis of position and specificity of migration and cellular integration; electron microscopy was used to confirm further the donor identities of migrated neurons. Neurons placed near host zones of photolytic neuron degeneration migrated up to 780 microns specifically within these zones; approximately 44% of donor neurons migrated significantly beyond the injection site to enter these regions. Migration and integration did not occur in normal, unaffected deeper layers IV-VI of these experimental mice, or in the normal lamina II/III bordering the transplantation site on the side opposite the neuron-deficient region. Control grafts of all five types revealed only minimal local spread without laminar preference.(ABSTRACT TRUNCATED AT 400 WORDS)
通过非侵入性激光照射对新皮质胼胝体锥体细胞进行选择性变性,用于新皮质移植的定向研究,以检验以下假设:移植的胚胎神经元可能试图在适当宽松的局部环境中恢复正常细胞结构。在长波长下,光可穿透组织而无主要吸收,光解可在体内对目标神经元的特定亚群造成极其选择性的变性(麦克利斯和麦迪逊,1991年;麦迪逊和麦克利斯,1993年)。细胞死亡在空间上是有界定的且进展缓慢,从而能够控制移植的解剖学基质。靶向是通过逆行摄取由特定波长光激活的细胞溶解性发色团实现的。混合的神经元、神经胶质细胞、轴突、血管和结缔组织保持完整。在子宫内或出生后早期用光活性纳米球进行靶向之后,新生小鼠幼崽的新皮质第II/III层发生变性。在限定区域内,总神经元密度通常降低25% - 30%,大型投射神经元损失约60%,小型假定中间神经元数量无变化。将包含注定形成第II/III层的近期有丝分裂后神经元的胚胎第17天新皮质细胞悬液,移植到幼年小鼠中正在发生神经元变性的这些区域的外侧。细胞注射跨越第II - V层,为供体神经元提供横向和层状选择,以便其可能进行迁移和整合。供体细胞在体外用独特的荧光和电子致密纳米球标记,从而在光学和电子显微镜水平上都能清晰识别供体细胞。对照实验包括将新皮质移植到年龄匹配的完整宿主中、移植到用 kainic 酸损伤新皮质的宿主中,或移植到远离光解神经元变性区域的地方;将胚胎小脑移植到选择性光解变性区域;以及将低渗裂解的新皮质细胞移植到损伤区域。在存活1小时至12周后,对标记的神经元进行形态学鉴定,并将其位置数字化,以对迁移和细胞整合的位置及特异性进行定性和定量分析;电子显微镜用于进一步确认迁移神经元的供体身份。置于光解神经元变性宿主区域附近的神经元在这些区域内特异性迁移高达780微米;约44%的供体神经元显著迁移至注射部位以外并进入这些区域。在这些实验小鼠正常、未受影响的更深层IV - VI中,以及在与神经元缺陷区域相对侧的移植部位相邻的正常第II/III层中,均未发生迁移和整合。所有五种类型的对照移植仅显示出极少的局部扩散,且无层状偏好。(摘要截短至400字)