Live imaging of Fibronectin 1a-mNeonGreen and Fibronectin 1b-mCherry knock-in alleles during early zebrafish development

IF 3.9 4区 生物学 Q4 Biochemistry, Genetics and Molecular Biology Cells and Development Pub Date : 2024-01-12 DOI:10.1016/j.cdev.2024.203900
Dörthe Jülich, Scott A. Holley
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Abstract

Within the developing embryo, cells assemble and remodel their surrounding extracellular matrix during morphogenesis. Fibronectin is an extracellular matrix glycoprotein and is a ligand for several members of the Integrin adhesion receptor family. Here, we compare the expression pattern and loss of function phenotypes of the two zebrafish fibronectin paralogs fn1a and fn1b. We engineered two fluorescently tagged knock-in alleles to facilitate live in vivo imaging of the Fibronectin matrix. Genetic complementation experiments indicate that the knock-in alleles are fully functional. Fn1a-mNeonGreen and Fn1b-mCherry are co-localized in ECM fibers on the surface of the paraxial mesoderm and myotendinous junction. In 5-days old zebrafish larvae, Fn1a-mNeonGreen predominantly localizes to the branchial arches, heart ventricle, olfactory placode and within the otic capsule while Fn1b-mCherry is deposited at the pericardium, proximal convoluted tubule, posterior hindgut and at the ventral mesoderm/cardinal vein. We examined Fn1a-mNeonGreen and Fn1b-mCherry in maternal zygotic integrin α5 mutants and integrin β1a; β1b double mutants and find distinct requirements for these Integrins in assembling the two Fibronectins into ECM fibers in different tissues. Rescue experiments via mRNA injection indicate that the two fibronectins are not fully inter-changeable. Lastly, we examined cross-regulation between the two Fibronectins and find fn1a is necessary for normal Fn1b fibrillogenesis in the presomitic mesoderm, but fn1b is dispensable for the normal pattern of Fn1a deposition.

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斑马鱼早期发育过程中 Fibronectin 1a-mNeonGreen 和 Fibronectin 1b-mCherry 基因敲入等位基因的实时成像。
在发育中的胚胎中,细胞在形态发生过程中组装并重塑其周围的细胞外基质。纤连蛋白是一种细胞外基质糖蛋白,是整合素粘附受体家族多个成员的配体。在这里,我们比较了两种斑马鱼纤连蛋白旁系亲属 fn1a 和 fn1b 的表达模式和功能缺失表型。我们设计了两种荧光标记的基因敲入等位基因,以方便对纤维粘连蛋白基质进行活体成像。基因互补实验表明,基因敲入等位基因具有完全的功能。Fn1a-mNeonGreen 和 Fn1b-mCherry 共同定位在副中胚层和肌腱交界处表面的 ECM 纤维中。在斑马鱼 5 日龄幼体中,Fn1a-mNeonGreen 主要定位在支弓、心室、嗅胎座和耳囊中,而 Fn1b-mCherry 则沉积在心包、近曲小管、后肠和腹侧中胚层/心静脉。我们研究了母体子代整合素α5突变体和整合素β1a; β1b双突变体中的Fn1a-mNeonGreen和Fn1b-mCherry,发现这些整合素在不同组织中将两种纤连蛋白组装成ECM纤维的过程中需要不同的整合素。通过注射 mRNA 进行的修复实验表明,这两种纤连蛋白并不能完全互换。最后,我们研究了两种纤连蛋白之间的交叉调节,发现绒毛膜前中胚层中正常的 Fn1b 纤维生成需要 fn1a,但 Fn1b 对于正常的 Fn1a 沉积模式是不可或缺的。
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来源期刊
Cells and Development
Cells and Development Biochemistry, Genetics and Molecular Biology-Developmental Biology
CiteScore
2.90
自引率
0.00%
发文量
33
审稿时长
41 days
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