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Cordoba, R.

Publications and source records attributed to Cordoba, R..

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Tig1 regulates proximo-distal identity during salamander limb regeneration

Salamander limb regeneration is an accurate process which gives rise exclusively to the missing structures, irrespective of the amputation level. This suggests that cells in the stump have an awareness of their spatial location, a property termed positional identity. Little is known about how positional identity is encoded, in salamanders or other biological systems. Through single-cell RNAseq analysis, we identified Tig1/Rarres1 as a potential determinant of proximal identity. Tig1 encodes a conserved cell surface molecule, is regulated by retinoic acid and exhibits a graded expression along the proximo-distal axis of the limb. Its overexpression leads to regeneration defects in the distal elements and elicits proximal displacement of blastema cells, while its neutralisation blocks proximo-distal cell surface interactions. Critically, Tig1 reprogrammes distal cells to a proximal identity, upregulating Prod1 and inhibiting Hoxa13 and distal transcriptional networks. Thus, Tig1 is a central cell surface determinant of proximal identity in the salamander limb.

developmental biology

Remote Ischemic Preconditioning Ameliorates Anthracycline-induced Cardiotoxicity and Preserves Mitochondrial Integrity

AimsAnthracycline-induced cardiotoxicity (AIC) is a serious adverse effect in a significant proportion of cancer patients. A central mechanism of AIC is irreversible mitochondrial damage. Despite major efforts, there are currently no effective therapies able to prevent AIC. Methods and ResultsForty Large-White pigs were included. In Study 1, 20 pigs were randomized 1:1 to remote ischemic pre-conditioning (RIPC, 3 cycles of 5 min leg ischemia followed by 5 min reperfusion) or no pretreatment. RIPC was performed immediately before each of five intracoronary doxorubicin injections (0.45 mg/kg) given at weeks 0, 2, 4, 6, and 8. A group of 10 pigs with no exposure to doxorubicin served as healthy controls. Pigs underwent serial cardiac magnetic resonance (CMR) exams at baseline and at weeks 6, 8, 12, and 16. After 16-week CMR, pigs were sacrificed and tissue samples collected. In study 2, 10 new pigs received 3 doxorubicin injections (with/out preceding RIPC) and were sacrificed 2 weeks after the third dose. In Study 1, LVEF remained unchanged in doxorubicin-treated pigs until week 6 (time of the fourth doxorubicin injection). From there on, LVEF progressively declined, but LVEF depression was blunted animals receiving RIPC before doxorubicin (RIPC-Doxo), which had a significantly higher LVEF at week 16 than doxorubicin treated pigs that received no pretreatment (Untreated-Doxo) (41.5{+/-}9.1% vs 32.5{+/-}8.7%, p=0.04). Preserved LVEF was mainly due to conserved contractile function, as evidenced by smaller LVESV, and better regional contractile function. In Study 2, transmission electron microscopy (TEM) after 3 doxorubicin doses showed fragmented mitochondria with severe morphological abnormalities in RIPC+Doxo pigs, together with upregulation of fission proteins and autophagy markers on western blot. At the end of the 16-week Study 1 protocol, TEM revealed overt mitochondrial fragmentation with structural fragmentation in Untreated-Doxo pigs, whereas interstitial fibrosis was significantly less severe in the RIPC+Doxo pigs. ConclusionIn a translatable large animal model of AIC, RIPC applied immediately before each doxorubicin injection resulted in preserved cardiac contractility with significantly higher long-term LVEF and less cardiac fibrosis. RIPC prevented mitochondrial fragmentation and dysregulated autophagy from the early stages of AIC. RIPC is a promising intervention for testing in clinical trials in AIC.

molecular biology