Both quiescent and proliferating cells circulate in the blood of the invasive apple snail Pomacea canaliculata

被引:18
|
作者
Rodriguez, Cristian [1 ,2 ,3 ]
Simon, Valeska [4 ]
Conget, Paulette [4 ]
Vega, Israel A. [1 ,2 ,3 ]
机构
[1] Univ Nacl Cuyo, CONICET, IHEM, Mendoza, Argentina
[2] Univ Nacl Cuyo, Fac Ciencias Med, Inst Fisiol, Mendoza, Argentina
[3] Univ Nacl Cuyo, Fac Ciencias Exactas & Nat, Dept Biol, Mendoza, Argentina
[4] Clin Alemana Univ Desarrollo, Fac Med, Ctr Med Regenerativa, Santiago 7710162, Chile
关键词
Hematopoiesis Stem cell; Hemocyte transfer; Cell cycle; Mitochondrial membrane potential; Multixenobiotic resistance system; Angiostrongylus cantonensis; Invasive species; HEMATOPOIETIC STEM-CELLS; ANGIOSTRONGYLUS-CANTONENSIS; PLURIPOTENCY; HEMOCYTES; BIOENERGETICS; MITOCHONDRIA; RESISTANCE; EXPRESSION; GASTROPODS; EFFLUX;
D O I
10.1016/j.fsi.2020.09.026
中图分类号
S9 [水产、渔业];
学科分类号
0908 ;
摘要
Gastropod hematopoiesis occurs at specialized tissues in some species, but the evidence also suggests that hemocyte generation is maybe widespread in the connective tissues or the blood system in others. In Ampullariidae (Caenogastropoda), both the kidney and the lung contain putative hematopoietic cells, which react to immune challenges. In the current study, we wanted to explore if hematopoiesis occurs in the blood of Pomacea canaliculata. Thus, we obtained circulating hemocytes from donor animals and tested their ability to proliferate in the blood of conspecific recipients. We tracked cell proliferation by labeling the donors' hemocytes with the fluorescent cell proliferation marker carboxyfluorescein diacetate succinimidyl ester (CFSE). Transferred CFSElabeled hemocytes survived and proliferated into the recipients' circulation for at least 17 days. We also determined the cell cycle status of circulating hemocytes by using the propidium iodide (PI) and acridine orange (AO) staining methods. Flow cytometry analyses showed that most PI-stained hemocytes were in the G1 phase (similar to 96%), while a lower proportion of cells were through the G2/S-M transition (similar to 4%). When we instead used AO-staining, we further distinguished a subpopulation of cells (similar to 5%) of low size, complexity-granularity, and RNA content. We regarded this subpopulation as quiescent cells. In separate experimental sets, we complemented these findings by assessing in circulating hemocytes two evolutionary conserved features of quiescent, undifferentiated cells. First, we used JC-1 staining to determine the mitochondrial membrane potential (Psi(m)) of circulating hemocytes, which is expected to be low in quiescent cells. Most hemocytes (similar to 87%) showed high aggregation of JC-1, which indicates a high Psi(m). Besides that, a small hemocyte subpopulation (similar to 11%) showed low aggregation of the dye, thus indicating a low Psi(m). It is known that the transition from a quiescent to a proliferating state associates with an increase of the Psi(m). The specificity of these changes was here controlled by membrane depolarization with the Psi(m) disruptor CCCP. Second, we stained hemocytes with Hoechst33342 dye to determine the efflux activity of ABC transporters, which participate in the multixenobiotic resistance system characteristic of undifferentiated cells. Most hemocytes (>99%) showed a low dye-efflux activity, but a small proportion of cells (0.06-0.12%) showed a high dye-efflux activity, which was significantly inhibited by 100 and 500 mu M verapamil, and thus is indicative of an undifferentiated subpopulation of circulating hemocytes. Taken together, our results suggest that, among circulating hemocytes, there are cells with the ability to proliferate or to stay in a quiescent state and behave as progenitor cells later, either in the circulation or the hematopoietic tissues/organs.
引用
收藏
页码:95 / 103
页数:9
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