| Epithelial-mesenchymal transition, a spectrum of states: Role in lung development, homeostasis, and disease |
37 |
| Epithelial-to-mesenchymal transition in cutaneous wound healing: Where we are and where we are heading |
28 |
| Epithelial-mesenchymal plasticity and circulating tumor cells: Travel companions to metastases |
24 |
| ReMAPping the microtubule landscape: How phosphorylation dictates the activities of microtubule-associated proteins |
22 |
| Applications of Human Brain Organoids to Clinical Problems |
22 |
| Endothelial-to-mesenchymal transition in cardiovascular diseases: Developmental signaling pathways gone awry |
18 |
| Neural stem cell therapy aiming at better functional recovery after spinal cord injury |
17 |
| Pan-cancer survey of epithelial-mesenchymal transition markers across the Cancer Genome Atlas |
15 |
| Prospects for new lung cancer treatments that target EMT signaling |
14 |
| Epithelial-mesenchymal Transition and Cancer Stem Cells: At the Crossroads of Differentiation and Dedifferentiation |
13 |
| LPA(1), LPA(2), LPA(4), and LPA(6) receptor expression during mouse brain development |
12 |
| Mitochondrial dynamics in the regulation of neurogenesis: From development to the adult brain |
12 |
| MicroRNA-induced silencing in epilepsy: Opportunities and challenges for clinical application |
11 |
| Maternal immune activation in neurodevelopmental disorders |
11 |
| MMP14 Regulates Cranial Neural Crest Epithelial-to-Mesenchymal Transition and Migration |
10 |
| Neurodegeneration in ataxia-telangiectasia: Multiple roles of ATM kinase in cellular homeostasis |
10 |
| The role of small GTPases of the Rho/Rac family in TGF--induced EMT and cell motility in cancer |
10 |
| Gut Feelings: Studying Enteric Nervous System Development, Function, and Disease in the Zebrafish Model System |
9 |
| Alterations in Retinoic Acid Signaling Affect the Development of the Mouse Coronary Vasculature |
9 |
| Stable transgenesis in Astyanax mexicanus using the Tol2 transposase system |
9 |
| Retinal Ganglion Cell Replacement: Current Status and Challenges Ahead |
9 |
| The fly eye: Through the looking glass |
8 |
| Filling in the phylogenetic gaps: Induction, migration, and differentiation of neural crest cells in a squamate reptile, the veiled chameleon (Chamaeleo calyptratus) |
7 |
| Expression Patterns of Rbm24 in Lens, Nasal Epithelium, and Inner Ear During Mouse Embryonic Development |
7 |
| Wnt is necessary for mesenchymal to epithelial transition in colorectal cancer cells |
6 |
| Generation and validation of novel conditional flox and inducible Cre alleles targeting fibroblast growth factor 18 (Fgf18) |
6 |
| Diverse roles for glycosaminoglycans in neural patterning |
6 |
| Expression of genes and proteins of the pax-six-eya-dach network in the metamorphic sea urchin: Insights into development of the enigmatic echinoderm body plan and sensory structures |
6 |
| Tissue Regeneration Enhancer Elements: A Way to Unlock Endogenous Healing Power |
6 |
| Role of the extracellular matrix in cancer-associated epithelial to mesenchymal transition phenomenon |
6 |
| Intercalated Cushion Cells Within the Cardiac Outflow Tract Are Derived From the Myocardial Troponin T Type 2 (Tnnt2) Cre Lineage |
6 |
| Novel Approaches to Study Coronary Vasculature Development in Mice |
5 |
| Foxc2 is Required for Proper Cardiac Neural Crest Cell Migration, Outflow Tract Septation, and Ventricle Expansion |
5 |
| Development and evolution of the metazoan heart |
5 |
| Postnatal development of lymphatic vasculature in the brain meninges |
5 |
| Gene network underlying the glial regenerative response to central nervous system injury |
5 |
| Compartmentalized Devices as Tools for Investigation of Human Brain Network Dynamics |
5 |
| Advancing genetic and genomic technologies deepen the pool for discovery in Xenopus tropicalis |
5 |
| The murine lens: A model to investigate in vivo epithelial-mesenchymal transition |
5 |
| Transforming growth factor matrix metalloproteinases, and urokinase-type plasminogen activator interaction in the cancer epithelial to mesenchymal transition |
5 |
| Cellular glycosylation senses metabolic changes and modulates cell plasticity during epithelial to mesenchymal transition |
5 |
| Removing vessel constriction on the embryonic heart results in changes in valve gene expression, morphology, and hemodynamics |
4 |
| Regional difference in microRNA regulation in the skull vault |
4 |
| A staging table for the embryonic development of the brownbanded bamboo shark (Chiloscyllium punctatum) |
4 |
| Peramorphosis, an evolutionary developmental mechanism in neotropical bat skull diversity |
4 |
| The generation of granule cells during the development and evolution of the cerebellum |
4 |
| Zebrafish mab21l2 mutants possess severe defects in optic cup morphogenesis, lens and cornea development |
4 |
| Molecular mechanisms underlying monosynaptic sensory-motor circuit development in the spinal cord |
4 |
| Axon guidance pathways and the control of gene expression |
4 |
| Sculpting the skull through neurosensory epithelial-mesenchymal signaling |
4 |