scholarly journals Lecithin:Retinol Acyltransferase Expression Is Regulated by Dietary Vitamin A and Exogenous Retinoic Acid in the Lung of Adult Rats

2002 ◽  
Vol 132 (6) ◽  
pp. 1160-1164 ◽  
Author(s):  
Reza Zolfaghari ◽  
A. Catharine Ross
2001 ◽  
Vol 391 (1) ◽  
pp. 8-15 ◽  
Author(s):  
Reza Zolfaghari ◽  
Christopher J. Cifelli ◽  
Melanie D. Banta ◽  
A.Catharine Ross

2011 ◽  
Vol 43 (1) ◽  
pp. 57-67 ◽  
Author(s):  
A. Catharine Ross ◽  
Christopher J. Cifelli ◽  
Reza Zolfaghari ◽  
Nan-qian Li

Vitamin A (retinol) is an essential precursor for the production of retinoic acid (RA), which in turn is a major regulator of gene expression, affecting cell differentiation throughout the body. Understanding how vitamin A nutritional status, as well as therapeutic retinoid treatment, regulates the expression of retinoid homeostatic genes is important for improvement of dietary recommendations and therapeutic strategies using retinoids. This study investigated genes central to processes of retinoid uptake and storage, release to plasma, and oxidation in the liver of rats under steady-state conditions after different exposures to dietary vitamin A (deficient, marginal, adequate, and supplemented) and acutely after administration of a therapeutic dose of all- trans-RA. Over a very wide range of dietary vitamin A, lecithin:retinol acyltransferase (LRAT) as well as multiple cytochrome P-450s (CYP26A1, CYP26B1, and CYP2C22) differed by diet and were highly correlated with one another and with vitamin A status assessed by liver retinol concentration (all correlations, P < 0.05). After acute treatment with RA, the same genes were rapidly and concomitantly induced, preceding retinoic acid receptor (RAR)β, a classical direct target of RA. CYP26A1 mRNA exhibited the greatest dynamic range (change of log 26 in 3 h). Moreover, CYP26A1 increased more rapidly in the liver of RA-primed rats than naive rats, evidenced by increased CYP26A1 gene expression and increased conversion of [3H]RA to polar metabolites. By in situ hybridization, CYP26A1 mRNA was strongly regulated within hepatocytes, closely resembling retinol-binding protein (RBP)4 in location. Overall, whether RA is produced endogenously from retinol or administered exogenously, changes in retinoid homeostatic gene expression simultaneously favor both retinol esterification and RA oxidation, with CYP26A1 exhibiting the greatest dynamic change.


Endocrinology ◽  
2006 ◽  
Vol 147 (1) ◽  
pp. 96-110 ◽  
Author(s):  
Nadège Vernet ◽  
Christine Dennefeld ◽  
Cécile Rochette-Egly ◽  
Mustapha Oulad-Abdelghani ◽  
Pierre Chambon ◽  
...  

As a first step in investigating the role of retinoic acid (RA) in mouse testis, we analyzed the distribution pattern of the enzymes involved in vitamin A storage (lecithin:retinol acyltransferase), RA synthesis (β-carotene 15,15′-monoxygenase and retinaldehyde dehydrogenases) and RA degradation (cytochrome P450 hydroxylases) as well as those of all isotypes of receptors transducing the RA signal [RA receptors (RARs) and rexinoid receptors (RXRs)]. Our data indicate that in adult testis 1) cytochrome P450 hydroxylase enzymes may generate in peritubular myoid cells a catabolic barrier that prevents circulating RA and RA synthesized by Leydig cells to enter the seminiferous epithelium; 2) the compartmentalization of RA synthesis within this epithelium may modulate, through paracrine mechanisms, the coupling between spermatogonia proliferation and spermatogenesis; 3) retinyl esters synthesized in round spermatids by lecithin:retinol acyltransferase may be transferred and stored in Sertoli cells, in the form of adipose differentiation-related protein-coated lipid droplets. We also show that RARα and RXRβ are confined to Sertoli cells, whereas RARγ is expressed in spermatogonia and RARβ, RXRα, and RXRγ are colocalized in step 7–8 spermatids. Correlating these expression patterns with the pathological phenotypes generated in response to RAR and RXR mutations and to postnatal vitamin A deficiency suggests that spermiation requires RXRβ/RARα heterodimers in Sertoli cells, whereas spermatogonia proliferation involves, independently of RXR, two distinct RAR-mediated signaling pathways in both Sertoli cells and spermatogonia. Our data also suggest that the involvement of RA in testis development starts when primary spermatogonia first appear.


Blood ◽  
2016 ◽  
Vol 128 (22) ◽  
pp. LBA-4-LBA-4
Author(s):  
Nina Cabezas-Wallscheid ◽  
Florian Buettner ◽  
Daniel Klimmeck ◽  
Pia Sommerkamp ◽  
Luisa Ladel ◽  
...  

Abstract Long-term quiescence or dormancy preserves the genomic integrity as well as the long-term self-renewal and functional capacities of hematopoietic stem cells (HSCs) during homeostasis. In response to infections, inflammatory or chemotherapy induced stress, dormant HSCs (dHSCs) become reversibly activated and are critical for the re-establishment of homeostasis. In our previous work, we defined the molecular landscape of HSCs and its immediate progenitors by determining their DNA-methylome, RNA- transcriptome and their proteome (Cabezas-Wallscheid et al., Cell Stem Cell 2014). This revealed the vitamin A/retinoic acid (RA) signaling pathway to be molecularly predominantly enriched in HSCs. However, the functional relevance of dietary vitamin A for maintenance of HSCs remains uncertain. Moreover, the molecular identity of very rare dHSCs as well as the mechanism regulating their maintenance or the transition out and back into dormancy remains unknown. We now show by single-cell RNA-seq analysis of >300 dHSCs and active HSCs (aHSCs) that the molecular transition from the most inactive dHSCs cluster to the most active HSCs can be best described as a continuous stream-like process linked to a steadily increasing metabolic activation. These single cell derived data are not consistent with a binary switch model, but instead suggest that activation/ differentiation downstream of dHSCs occurs in a continuum without the generation of discrete progenitor cell types. During this process,protein synthesis is increased first, followed by the increase of cell cycle related components. We then measured the time to first division starting from either a dHSC or an aHSC for 285 SiCs by single cell live cell imaging. We found that aHSCs showed an average of 29.5±0.7 hours to enter mitosis, while dHSCs needed 40.8±1.3 hours. This pronounced difference (11.3 hours) between two initially non-cycling populations suggests that dHSCs reside in a deeper level of quiescence, namely dormancy, which is also consistent with the molecular data mentioned above. The association of delayed cell cycle entry with the extremely low biosynthetic activity defines the status of dormancy and distinguishes it from quiescence. Furthermore, based on the acquired expression signatures, we describe the first marker-based, non-label retaining mouse model to specify dHSCs (Gpr-EGFP). We show molecularly and functionally that HSC-Gpr-pos cells resemble dHSCs demonstrating that the Gpr-EGFP mouse line can now be used as a simple alternative approach to track dHSCs and thus circumvent time-consuming label-retaining assays. The Gpr-EGFP model now allows to closely follow cell cycle dynamics within the dHSC compartment. Importantly, the mechanism regulating maintenance and the transition out of dormancy remains unknown. Our data focusing specifically on the most primitive HSCs revealed a critical role for vitamin A/RA signaling in controlling the cell cycle plasticity of dHSCs. We now show by in vitro and in vivo experiments, that treatment with the RA agonist all-trans retinoic-acid (ATRA) preserves dHSCs and maintains critical properties of HSCs. This includes maintenance of long-term self-renewal, low proliferation associated with decreased levels of Cdk6, expression of key transcription factors (Hoxb4), reduced protein synthesis and low levels of reactive oxygen species (ROS) as well as low Myc protein levels. Indeed, in response to activation signals, the presence of ATRA prevents up-regulation of c-Myc protein in HSCs and the effects of ATRA or drug induced Myc inhibition result in similar consequences on HSCs. Moreover, ATRA not only represses ROS production, but also prevents HSCs from entering the cell cycle upon diverse stress stimuli (pIC, LPS, 5-FU) in vivo. Most of the studies on vitamin A deficit-associated immunodeficiency are dedicated to the impaired function of lymphocytes. Thus, we analyzed the consequences of a vitamin A deficient diet for dormant HSCs. Strikingly, we found that HSCs are progressively lost over time and dHSCs did not recover after pIC-mediated activation in the absence of vitamin A. Collectively, these data uncover a critical role of vitamin A/RA signaling for the re-establishment of the dormant HSC population after stress-mediated activation. Together, our results highlight a so far unrecognized impact of dietary vitamin A on the regulation of cell cycle mediated stem cell plasticity. Disclosures No relevant conflicts of interest to declare.


2012 ◽  
Vol 109 (10) ◽  
pp. 1739-1745 ◽  
Author(s):  
Lili Wu ◽  
A. Catharine Ross

Vitamin A (VA) plays an important role in post-natal lung development and maturation. Previously, we have reported that a supplemental dose of VA combined with 10 % of all-trans-retinoic acid (VARA) synergistically increases retinol uptake and retinyl ester (RE) storage in neonatal rat lung, while up-regulating several retinoid homeostatic genes including lecithin:retinol acyltransferase (LRAT) and the retinol-binding protein receptor, stimulated by retinoic acid 6 (STRA6). However, whether inflammation has an impact on the expression of these genes and thus compromises the ability of VARA to increase lung RE content is not clear. Neonatal rats, 7- to 8-d-old, were treated with VARA either concurrently with lipopolysaccharide (LPS; Expt 1) or 12 h after LPS administration (Expt 2); in both studies, lung tissue was collected 6 h after VARA treatment, when RE formation is maximal. Inflammation was confirmed by increased IL-6 and chemokine (C–C motif) ligand 2 (CCL2) gene expression in lung at 6 h and C-reactive protein in plasma at 18 h. In both studies, LPS-induced inflammation only slightly reduced, but did not prevent the VARA-induced increase in lung RE. Quantitative RT-PCR showed that co-administration of LPS with VARA slightly attenuated the VARA-induced increase of LRAT mRNA, but not of STRA6 or cytochrome P450 26B1, the predominant RA hydroxylase in lung. By 18 h post-LPS, expression had subsided and none of these genes differed from the level in the control group. Overall, the present results suggest that retinoid homeostatic gene expression is reduced modestly, if at all, by acute LPS-induced inflammation and that VARA is still effective in increasing lung RE under conditions of moderate inflammation.


1997 ◽  
Vol 16 (4) ◽  
pp. 193-197 ◽  
Author(s):  
György Csaba ◽  
Annamária Gaál

Single neonatal treatment with vitamin A (retinol) dramatically reduced the sexual activity of adult male rats. In females there was a significant decrease in the Meyerson index and a non significant decrease in the lordosis quotient. The effect of three perinatal treatments (at the first, third and fifth day) with all-trans retinoic acid was much weaker, causing only a significant increase in the time of the first ejaculation in males and non- significant decrease in the lordosis quotient of females. The experiments call attention to the false imprinting provoking effect of materials acting on members of the steroid receptor superfamily with possible human health aspect.


2000 ◽  
Vol 70 (6) ◽  
pp. 278-286 ◽  
Author(s):  
Brian Nonnecke ◽  
Ronald Horst ◽  
Dana Hammell ◽  
Sharon Franklin

Neonatal calves are fed frequently milk replacers with vitamin A concentrations exceeding those recommended by the National Research Council. The vitamin A metabolite, retinoic acid (RA), affects profoundly cellular differentiation and homeostasis. For this reason, effects of dietary vitamin A on plasma concentrations of RA isomers in milk replacer-fed calves were examined. Male, Holstein calves (n = 24) were fed colostrum within 12 hours after birth and, thereafter, a custom-formulated low vitamin A milk replacer providing 0, 1700 [National Research Council (NRC) daily requirement for young growing calves] (controls), 34000 (industry standard in the United States) or 68000 IU of vitamin A daily. Concentrations of retinol and RA isomers in plasma samples collected from birth to 27 days of age were determined by HPLC. Retinol was affected by dietary vitamin A with higher concentrations occurring in calves supplemented with >= 34000 IU of vitamin A/day than in control (1700 IU of vitamin daily) and unsupplemented calves. Relative to controls, concentrations of all isomers of RA were higher in calves supplemented with >= 34000 of vitamin A daily during the experimental period. The predominant isomer in all calves was 9,13-dicis-RA. In control calves, 9,13-dicis-RA and 9-cis-RA were maximal at 1 to 6 days of age and then decreased progressively. In calves fed >= 34000 IU of vitamin A daily, concentrations of these isomers were markedly higher at 6 days of age, relative to controls, and remained elevated for the duration of the study. In all calves, retinol was correlated positively with 9,13-dicis- and 9-cis-RA from 9 to 27 day of age. 9,13-cis-Retinoic acid was correlated positively with 9-cis- and 13-cis-RA from 13 to 27 days of age. It is concluded that supplementing milk replacer-fed calves with vitamin A at levels exceeding current NRC recommendations by >= 20-fold causes an elevation in plasma concentrations of retinol and retinoic acids. 9,13-dicis- and 9-cis-Retinoic acids were most affected by supplemental vitamin A. Physiologic consequences of increased plasma RA concentrations induced by high dietary levels of vitamin A warrant investigation.


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