Bertrand, J.Y., Kim, A.D., Violette, E.P., Stachura, D.L., Cisson, J.L., Traver, D., 2007. Definitive hematopoiesis initiates through a committed erythromyeloid progenitor in the zebrafish embryo. 134, 4147-4156.
|
Cannon, J.E., Place, E.S., Eve, A.M., Bradshaw, C.R., Sesay, A., Morrell, N.W., Smith, J.C., 2013. Global analysis of the haematopoietic and endothelial transcriptome during zebrafish development. Mech. Dev. 130, 122-131.
|
Capogrossi, M.C., Bresciani, E., Confalonieri, S., Cermenati, S., Cimbro, S., Foglia, E., Beltrame, M., Di Fiore, P.P., Cotelli, F., 2010. Zebrafish numb and numblike are involved in primitive erythrocyte differentiation. 5, e14296.
|
Dai, Y., Wu, S., Cao, C., Xue, R., Luo, X., Wen, Z., Xu, J., 2022. Csf1rb regulates definitive hematopoiesis in zebrafish. 149, dev200534.
|
Eaves, C.J., 2015. Hematopoietic stem cells: concepts, definitions, and the new reality. Blood 125, 2605-2613.
|
Eisele, A.S., Cosgrove, J., Magniez, A., Tubeuf, E., Tenreira Bento, S., Conrad, C., Cayrac, F., Tak, T., Lyne, A.-M., Urbanus, J., et al., 2022. Erythropoietin directly remodels the clonal composition of murine hematopoietic multipotent progenitor cells. eLife 11, e66922.
|
Garcia-Lopez, J.P., Grimaldi, A., Chen, Z., Meneses, C., Bravo-Tello, K., Bresciani, E., Banderas, A., Burgess, S.M., Hernandez, P.P., Feijoo, C.G., 2023. Ontogenetically distinct neutrophils differ in function and transcriptional profile in zebrafish. Nat. Commun. 14, 4942.
|
Jin, H., Sood, R., Xu, J., Zhen, F., English, M.A., Liu, P.P., Wen, Z., 2009. Definitive hematopoietic stem/progenitor cells manifest distinct differentiation output in the zebrafish VDA and PBI. 136, 1397-1397.
|
Kissa, K., Herbomel, P., 2010. Blood stem cells emerge from aortic endothelium by a novel type of cell transition. Nature 464, 112-115.
|
Klymkowsky, M., Berrun, A., Harris, E., Stachura, D.L., 2018. Isthmin 1 (ism1) is required for normal hematopoiesis in developing zebrafish. 13, e0196872.
|
Love, M.I., Huber, W., Anders, S., 2014. Moderated estimation of fold change and dispersion for RNA-seq data with DESeq2. Genome Biol. 15, 550.
|
Lucas, D., 2021. Structural organization of the bone marrow and its role in hematopoiesis. Curr. Opin. Hematol. 28, 36-42.
|
Mahony, C.B., Fish, R.J., Pasche, C., Bertrand, J.Y., 2016. Tfec controls the hematopoietic stem cell vascular niche during zebrafish embryogenesis. Blood 128, 1336-1345.
|
Oltova, J., Svoboda, O., Machonova, O., Svatonova, P., Traver, D., Kolar, M., Bartunek, P., 2020. Zebrafish Kit ligands cooperate with erythropoietin to promote erythroid cell expansion. . 4, 5915-5924.
|
Schofield, R., 1978. The relationship between the spleen colony-forming cell and the haemopoietic stem cell. 4, 7-25.
|
Tamplin, Owen J., Durand, Ellen M., Carr, Logan A., Childs, Sarah J., Hagedorn, Elliott J., Li, P., Yzaguirre, Amanda D., Speck, Nancy A., Zon, Leonard I., 2015. Hematopoietic stem cell arrival triggers dynamic remodeling of the perivascular niche. Cell 160, 241-252.
|
Wiley, D.M., Kim, J.-D., Hao, J., Hong, C.C., Bautch, V.L., Jin, S.-W., 2011. Distinct signalling pathways regulate sprouting angiogenesis from the dorsal aorta and the axial vein. Nat. Cell Biol. 13, 686-692.
|
Zuklys, S., Handel, A., Zhanybekova, S., Govani, F., Keller, M., Maio, S., Mayer, C.E., Teh, H.Y., Hafen, K., Gallone, G., et al., 2016. Foxn1 regulates key target genes essential for T cell development in postnatal thymic epithelial cells. Nat. Immunol. 17, 1206-1215.
|