4.4 Article

Analysis of Gene Function and Visualization of Cilia-Generated Fluid Flow in Kupffer's Vesicle

Journal

JOVE-JOURNAL OF VISUALIZED EXPERIMENTS
Volume -, Issue 73, Pages -

Publisher

JOURNAL OF VISUALIZED EXPERIMENTS
DOI: 10.3791/50038

Keywords

Developmental Biology; Issue 73; Genetics; Cellular Biology; Neurobiology; Neuroscience; Molecular Biology; Bioengineering; Biophysics; Anatomy; Physiology; Cilia; Zebrafish; Danio rerio; Gene Knockdown Techniques; Left-right asymmetry; cilia; Kupffer's Vesicle; morpholinos; microinjection; animal model

Funding

  1. AHA [11PRE5730027]
  2. NHLBI [R01HL66292, R01HL095690]

Ask authors/readers for more resources

Internal organs such as the heart, brain, and gut develop left-right (LR) asymmetries that are critical for their normal functions(1). Motile cilia are involved in establishing LR asymmetry in vertebrate embryos, including mouse, frog, and zebrafish(2-6). These 'LR cilia' generate asymmetric fluid flow that is necessary to trigger a conserved asymmetric Nodal (TGF-beta superfamily) signaling cascade in the left lateral plate mesoderm, which is thought to provide LR patterning information for developing organs(7). Thus, to understand mechanisms underlying LR patterning, it is essential to identify genes that regulate the organization of LR ciliated cells, the motility and length of LR cilia and their ability to generate robust asymmetric flow. In the zebrafish embryo, LR cilia are located in Kupffer's vesicle (KV) (2,4,5). KV is comprised of a single layer of monociliated epithelial cells that enclose a fluid-filled lumen. Fate mapping has shown that KV is derived from a group of similar to 20-30 cells known as dorsal forerunner cells (DFCs) that migrate at the dorsal blastoderm margin during epiboly stages(8,9). During early somite stages, DFCs cluster and differentiate into ciliated epithelial cells to form KV in the tailbud of the embryo(10,11). The ability to identify and track DFCs-in combination with optical transparency and rapid development of the zebrafish embryo-make zebrafish KV an excellent model system to study LR ciliated cells. Interestingly, progenitors of the DFC/KV cell lineage retain cytoplasmic bridges between the yolk cell up to 4 hr post-fertilization (hpf), whereas cytoplasmic bridges between the yolk cell and other embryonic cells close after 2 hpf(8). Taking advantage of these cytoplasmic bridges, we developed a stage-specific injection strategy to deliver morpholino oligonucleotides (MO) exclusively to DFCs and knockdown the function of a targeted gene in these cells(12). This technique creates chimeric embryos in which gene function is knocked down in the DFC/KV lineage developing in the context of a wild-type embryo. To analyze asymmetric fluid flow in KV, we inject fluorescent microbeads into the KV lumen and record bead movement using videomicroscopy(2). Fluid flow is easily visualized and can be quantified by tracking bead displacement over time. Here, using the stage-specific DFC-targeted gene knockdown technique and injection of fluorescent microbeads into KV to visualize flow, we present a protocol that provides an effective approach to characterize the role of a particular gene during KV development and function.

Authors

I am an author on this paper
Click your name to claim this paper and add it to your profile.

Reviews

Primary Rating

4.4
Not enough ratings

Secondary Ratings

Novelty
-
Significance
-
Scientific rigor
-
Rate this paper

Recommended

No Data Available
No Data Available