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De-hua Wang - One of the best experts on this subject based on the ideXlab platform.

  • Water deprivation up-regulates urine osmolality and renal aquaporin 2 in Mongolian gerbils (Meriones unguiculatus).
    Comparative Biochemistry and Physiology Part A: Molecular & Integrative Physiology, 2016
    Co-Authors: De-hua Wang
    Abstract:

    To better understand how desert rodents adapt to water scarcity, we examined urine osmolality, renal distribution and expression of aquaporins (AQPs) in Mongolian gerbils (Meriones unguiculatus) during 7 days of water deprivation (WD). Urine osmolality of the gerbils during WD averaged 7503 mOsm kg(-1). Renal distributions of AQP1, AQP2, and AQP3 were similar to that described in other rodents. After the 7 day WD, renal AQP2 was up-regulated, while resting metabolic rate and total evaporative water loss decreased by 43% and 36%, respectively. Our data demonstrated that Mongolian gerbils showed high urine concentration, renal AQPs expression and body water conservation to cope with limited water availability, which may be critical for their survival during dry seasons in cold deserts.

  • water deprivation up regulates urine osmolality and renal aquaporin 2 in mongolian gerbils meriones unguiculatus part a molecular integrative physiology
    Comparative Biochemistry and Physiology, 2016
    Co-Authors: De-hua Wang
    Abstract:

    To better understand how desert rodents adapt to water scarcity, we examined urine osmolality, renal distribution and expression of aquaporins (AQPs) in Mongolian gerbils (Meriones unguiculatus) during 7days of water deprivation (WD). Urine osmolality of the gerbils during WD averaged 7503mOsmkg⁻¹. Renal distributions of AQP1, AQP2, and AQP3 were similar to that described in other rodents. After the 7day WD, renal AQP2 was up-regulated, while resting metabolic rate and total evaporative water loss decreased by 43% and 36%, respectively. Our data demonstrated that Mongolian gerbils showed high urine concentration, renal AQPs expression and body water conservation to cope with limited water availability, which may be critical for their survival during dry seasons in cold deserts.

A. S. Verkman - One of the best experts on this subject based on the ideXlab platform.

  • aquaporins important but elusive drug targets
    Nature Reviews Drug Discovery, 2014
    Co-Authors: A. S. Verkman, Marc O Anderson, Marios C. Papadopoulos
    Abstract:

    The aquaporins (AQPs) are a family of small, integral membrane proteins that facilitate water transport across the plasma membranes of cells in response to osmotic gradients. Data from knockout mice support the involvement of AQPs in epithelial fluid secretion, cell migration, brain oedema and adipocyte metabolism, which suggests that modulation of AQP function or expression could have therapeutic potential in oedema, cancer, obesity, brain injury, glaucoma and several other conditions. Moreover, loss-of-function mutations in human AQPs cause congenital cataracts (AQP0) and nephrogenic diabetes insipidus (AQP2), and autoantibodies against AQP4 cause the autoimmune demyelinating disease neuromyelitis optica. Although some potential AQP modulators have been identified, challenges associated with the development of better modulators include the druggability of the target and the suitability of the assay methods used to identify modulators.

  • Aquaporin Deletion in Mice Reduces Intraocular Pressure and Aqueous Fluid Production
    2013
    Co-Authors: Duo Zhang, L. Vetrivel, A. S. Verkman
    Abstract:

    abstract Aquaporin (AQP) water channels are expressed in the eye at sites of aqueous fluid production and outflow: AQP1 and AQP4 in nonpigmented ciliary epithelium, and AQP1 in trabecular meshwork endothelium. Novel methods were developed to compare aqueous fluid dynamics in wild-type mice versus mice lacking AQP1 and/or AQP4. Aqueous fluid production was measured by in vivo confocal microscopy after transcorneal iontophoretic introduction of fluorescein. Intraocular pressure (IOP), outflow, and anterior chamber compliance were determined from pressure measurements in response to fluid infusions using micropipettes. Aqueous fluid volume and [Cl � ] were assayed in samples withdrawn by micropipettes. In wild-type mice (CD1 genetic background, age 4–6 wk), IOP was 16.0 � 0.4 mmHg (SE), aqueous fluid volume 7.2 � 0.3 �l, fluid production 3.6 � 0.2 �l/h, fluid outflow 0.36 � 0.06 �l/h/mmHg, and compliance 0.036 � 0.006 �l/mmHg. IOP was significantly decreased by up to 1.8 mmHg (P � 0.002) and fluid production by up to 0.9 �l/h in age/litter-matched mice lacking AQP1 and/or AQP4 (outbred CD1 and inbred C57/bl6 genetic backgrounds). However, AQP deletion did not significantly affect outflow, [Cl �], volume, or compliance. These results provide evidence for the involvement of AQPs in intraocular pressure regulation by facilitating aqueous fluid secretion across the ciliary epithelium. AQP inhibition may thus provide a novel approach for the treatment of elevated IOP. key words

  • functions of aquaporins in the eye
    Progress in Retinal and Eye Research, 2008
    Co-Authors: A. S. Verkman, Javier Ruizederra, Marc H Levin
    Abstract:

    The aquaporins (AQPs) are integral membrane proteins whose main function is to transport water across cell membranes in response to osmotic gradients. At the ocular surface, AQP1 is expressed in corneal endothelium, AQP3 and AQP5 in corneal epithelium, and AQP3 in conjunctival epithelium. AQPs are also expressed in lens fiber cells (AQP0), lens epithelium (AQP1), ciliary epithelium (AQP1, AQP4) and retinal Muller cells (AQP4). Mutations in AQP0 produce congenital cataracts in humans. Analysis of knockout mice lacking individual AQPs suggests their involvement in maintenance of corneal and lens transparency, corneal epithelial repair, intraocular pressure (IOP) regulation, retinal signal transduction and retinal swelling following injury. The mouse phenotype findings implicate AQPs as potential drug targets for therapy of elevated IOP and ocular disorders involving the cornea, lens and retina. However, much research remains in defining cell-level mechanisms for the ocular AQP functions, in establishing the relevance to human eye disease of conclusions from knockout mice, and in developing AQP-modulating drugs.

  • aquaporins new players in cancer biology
    Journal of Molecular Medicine, 2008
    Co-Authors: A. S. Verkman, Mariko Harachikuma, Marios C. Papadopoulos
    Abstract:

    The aquaporins (AQPs) are small, integral-membrane proteins that selectively transport water across cell plasma membranes. A subset of AQPs, the aquaglyceroporins, also transport glycerol. AQPs are strongly expressed in tumor cells of different origins, particularly aggressive tumors. Recent discoveries of AQP involvement in cell migration and proliferation suggest that AQPs play key roles in tumor biology. AQP1 is ubiquitously expressed in tumor vascular endothelium, and AQP1-null mice show defective tumor angiogenesis resulting from impaired endothelial cell migration. AQP-expressing cancer cells show enhanced migration in vitro and greater local tumor invasion, tumor cell extravasation, and metastases in vivo. AQP-dependent cell migration may involve AQP-facilitated water influx into lamellipodia at the front edge of migrating cells. The aquaglyceroporin AQP3, which is found in normal epidermis and becomes upregulated in basal cell carcinoma, facilitates cell proliferation in different cell types. Remarkably, AQP3-null mice are resistant to skin tumorigenesis by a mechanism that may involve reduced tumor cell glycerol metabolism and ATP generation. Together, the data suggest that AQP expression in tumor cells and tumor vessels facilitates tumor growth and spread, suggesting AQP inhibition as a novel antitumor therapy.

  • role of aquaporins in lung liquid physiology
    Respiratory Physiology & Neurobiology, 2007
    Co-Authors: A. S. Verkman
    Abstract:

    Aquaporins (AQPs) are small, integral membrane proteins that facilitate water transport across cell membranes in response to osmotic gradients. Water transport across epithelia and endothelia in the peripheral lung and airways occurs during airway hydration, alveolar fluid transport and submucosal gland secretion. Several AQPs are expressed in the lung and airways: AQP1 in microvascular endothelia, AQP3 and AQP4 in airway epithelia, and AQP5 in type I alveolar epithelial cells, submucosal gland acini, and a subset of airway epithelial cells. Phenotype analysis of transgenic knockout mice lacking AQPs has defined their roles in the lung and airways. AQP1 and AQP5 provide the principal route for osmotically driven water transport between airspace and capillary compartments; however, alveolar fluid clearance in the neonatal and adult lung is not affected by their deletion, nor is lung fluid accumulation in experimental models of lung injury. In the airways, though AQP3 and AQP4 facilitate osmotic water transport, their deletion does not impair airway hydration, regulation of airway surface liquid, or fluid absorption. In contrast to these negative findings, AQP5 deletion in submucosal glands reduced fluid secretion by >50%. The substantially slower fluid transport in the lung compared to renal and secretory epithelia probably accounts for the lack of functional significance of AQPs in the lung and airways. Recent data outside of the lung implicating the involvement of AQPs in cell migration and proliferation suggests possible new roles for lung AQPs to be explored.

Raquel Fantin Domeniconi - One of the best experts on this subject based on the ideXlab platform.

  • Aquaporins expression and localization in the adult dog testis excurrent ducts (Canis familiaris)
    2017
    Co-Authors: Raquel Fantin Domeniconi
    Abstract:

    Resumo: Estudos recentes têm identificado família de proteínas denominadas aquaporinas (AQP), relacionadas à alta permeabilidade de água em várias membranas biológicas. As AQP1, AQP2, AQP7, AQP8 e AQP9 são as principais AQPs identificadas no sistema genital masculino, sendo a sua localização espécie-específica e região-específica. Em vista da importância do fluido luminal na via espermática para a integridade morfofuncional dos espermatozóides, bem como dos componentes que os constituem, tais como a água e proteínas, é importante estudar a distribuição das AQPs ao longo da via espermática. Assim, este trabalho teve como objetivos principais estudar no cão as AQP1, AQP2, AQP7, AQP8 e AQP9, visando identificá-las e localizá-las, através de imuno-histoquímica e ?Western blotting? na via espermática. No cão, a AQP1 foi notada na rede testicular, ductos eferentes e em vasos, sugerindo sua importância na rápida absorção de fluido testicular. Pela primeira vez a AQP2 foi detectada na rede testicular, ductos eferentes e epidídimo, e a AQP7 no epitélio epididimário e ducto deferente em mamíferos. Porém, o papel funcional dessas AQPs no sistema genital masculino do cão permanece desconhecido. A AQP8 não foi detectada ao longo dos ductos extratesticulares do cão. A AQP9 foi abundantemente expressada ao longo da via espermática do cão, que representa um importante caminho apical para o fluxo transmembrana de água e solutos. Portanto, os resultados confirmam o padrão de expressão espécie-específica e região-específica das AQPs, sugerindo variações de atividades de absorção de fluidos e solutos ao longo da via espermática. O conhecimento destas variações torna-se relevante para estudos clínicos de infertilidade, bem como para tecnologias de reprodução assistida ;;Abstract: Recent studies have identified proteins called aquaporins (AQP) related to the fast water permeability in some biological membranes. AQPs are small, intrinsic membrane proteins that are present in many cell types involved in fluid transport. AQP1, AQP2, AQP7, AQP8 and AQP9 had been the main AQPs identified in the male reproductive tract, being their localization species-specific and region-specific. In view of the importance of the luminal fluid to sperm maturation and integrity of the spermatozoa, it is important to study the distribution of the AQPs throughout the spermatic way. Thus, the aim of this study was to examine the expression of AQP1, AQP2, AQP7, AQP8 e AQP9 in epithelial cells in the adult dog efferent ducts, epididymis and vas deferens, using immunohistochemistry and estern blotting methods to characterize the aquaporins in male reproductive tract. In dog, AQP1 was noted in rete testis, efferent ducts and in vessels in intertubular space, suggesting that AQP1 is important for rapid absorption of testicular fluid. For the first time the AQP2 was detected in rete testis, efferent ducts and epididymis and the AQP7 was expressed in the epithelium epididymidis and in vas deferens in mammals. But its functional role in the male dog reproductive tract, remain unknown. No specific staining for AQP8 was detected in epithelial cells of excurrent ducts in dog testis. AQP9 was abundantly expressed in dog male reproductive tract, in which it is an important apical pathway for transmembrane flow of water and neutral solutes. Thus the results confirm that the AQPs are species-specific and region-specific, suggesting activity variations related with the fluid and solute absorption throughout male excurrent ducts. Investigations of AQP biology could be relevant to clinical studies of the male reproductive tract, as well as to technologies for assisted procreatio

  • immunolocalization of aquaporins 1 2 and 7 in rete testis efferent ducts epididymis and vas deferens of adult dog
    Cell and Tissue Research, 2008
    Co-Authors: Raquel Fantin Domeniconi, A M Orsi, Luis A Justulin, Celia Cristina Leme Beu, Sergio Luis Felisbino
    Abstract:

    The transepithelial movement of water into the male reproductive tract is an essential process for normal male fertility. Protein water channels, referred to as aquaporins (AQPs), are involved in increasing the osmotic permeability of membranes. This study has examined the expression of AQP1, AQP2, and AQP7 in epithelial cells in adult dog efferent ducts, epididymis, and vas deferens. Samples of dog male reproductive tract comprising fragments of the testis, initial segment, caput, corpus and cauda epididymidis, and vas deferens were investigated by immunohistochemistry and Western blotting procedures to show the localization and distribution of the AQPs. AQP1 was noted in rete testis, in efferent ducts, and in vessels in the intertubular space, suggesting that AQP1 participated in the absorption of the large amount of testicular fluid occurring characteristically in the efferent ducts. AQP2 expression was found in the rete testis, efferent ducts and epididymis, whereas AQP7 was expressed in the epithelium of the proximal regions of the epididymis and in the vas deferens. This is the first time that AQP2 and AQP7 have been observed in these regions of mammalian excurrent ducts, but their functional role in the dog male reproductive tract remains unknown. Investigations of AQP biology could be relevant for clinical studies of the male reproductive tract and to technologies for assisted procreation.

Soren Nielsen - One of the best experts on this subject based on the ideXlab platform.

  • identification and characterization of potent and selective aquaporin 3 and aquaporin 7 inhibitors
    Journal of Biological Chemistry, 2019
    Co-Authors: Yonathan Sonntag, Jd Nieland, Patrizia Gena, Anna Maggio, Tania Singh, Isabella Artner, Michal K Oklinski, Urban Johanson, Per Kjellbom, Soren Nielsen
    Abstract:

    The aquaglyceroporins are a subfamily of aquaporins that conduct both water and glycerol. Aquaporin-3 (AQP3) has an important physiological function in renal water reabsorption, and AQP3-mediated hydrogen peroxide (H2O2) permeability can enhance cytokine signaling in several cell types. The related aquaglyceroporin AQP7 is required for dendritic cell chemokine responses and antigen uptake. Selective small-molecule inhibitors are desirable tools for investigating the biological and pathological roles of these and other AQP isoforms. Here, using a calcein fluorescence quenching assay we screened a library of 7360 drug-like small molecules for inhibition of mouse AQP3 water permeability. Hit confirmation and expansion with commercially available substances identified the ortho-chloride-containing compound DFP00173, which inhibited mouse and human AQP3 with an IC50 of ~0.1-0.4 μM but had low efficacy toward mouse AQPs 7 and 9. Surprisingly, inhibitor specificity testing revealed that the methylurea-linked compound Z433927330, a partial AQP3 inhibitor (IC50 ~0.7-0.9 μM), is a potent and efficacious inhibitor of mouse AQP7 water permeability (IC50 ~0.2 μM). Stopped-flow light-scattering measurements confirmed that DFP00173 and Z433927330 inhibit AQP3 glycerol permeability in human erythrocytes. Moreover, DFP00173, Z433927330, and the previously identified AQP9 inhibitor RF03176 blocked aquaglyceroporin H2O2 permeability. Molecular docking to AQP3, AQP7, and AQP9 homology models suggested interactions between these inhibitors and aquaglyceroporins at similar binding sites. DFP00173 and Z433927330 constitute selective and potent AQP3 and AQP7 inhibitors, respectively, and contribute to a set of isoform-specific aquaglyceroporin inhibitors that will facilitate the evaluation of these AQP isoforms as drug targets. (Less)

  • expression of aquaporin 1 5 and 9 in the ovarian follicles of cycling and early pregnant pigs
    Physiological Research, 2015
    Co-Authors: Agnieszka Skowronska, Soren Nielsen, Patrycja Mlotkowska, Maciej Eliszewski, Mariusz T Skowronski
    Abstract:

    Aquaporins (AQPs) are water channel proteins responsible for water homeostasis and important for proper functioning of all body systems, including reproductive structures. This study was designed to determine their localization and quantitative changes in the pig ovary during different stages of the estrous cycle and early pregnancy. The expression of AQP 1, 5 and 9 proteins was determined by immunocytochemistry and Western blot analyses. AQP1 was found in the plasma membranes of capillary endothelium, AQP5 - in the plasma membranes of granulosa cells of developing follicles and flattened follicle cells of the primordial follicles, and AQP9 - in granulosa cells of the developing follicles. In the cyclic pigs, the expression of AQP1 and 5 proteins was the highest on Days 18-20, but did not change significantly between Days 2-4, 10-12 and 14-16 of the cycle. In pregnant pigs (Days 14-16 and 30-32), the expression of AQP1 and 5 did not change and was similar to that observed during Days 10-12 and 14-16. In turn, AQP9 expression did not change between all studied periods. In conclusion, studied AQP are localized in different cells populations, the endothelial and granulosa cells, and AQP1 and 5 seem to be crucial for follicular development in pigs.

  • fluctuation of aquaporin 1 5 and 9 expression in the pig oviduct during the estrous cycle and early pregnancy
    Journal of Histochemistry and Cytochemistry, 2011
    Co-Authors: Mariusz T Skowronski, Agnieszka Skowronska, Soren Nielsen
    Abstract:

    Thirteen mammalian aquaporin (AQPs) isoforms with a unique tissue-specific pattern of expression have been identified. To date, 11 isoforms of AQP have been reported to be expressed in female and male reproductive systems. The purpose of our study was to determine the localization and quantitative changes in the expression of AQP1, 5 and 9 within the pig oviduct during different stages of the estrous cycle and early pregnancy. The results demonstrated that AQP1, 5, and 9 were clearly detected in all studied stages of the estrous cycle and pregnancy. AQP1 was localized within oviductal blood vessels. In cyclic gilts, the expression of AQP1 protein did not change significantly between days 10–12 and 14–16 but increased on days 2–4 and 18–20. AQP5 was localized in smooth muscle cells and oviductal epithelial cells. The expression of AQP5 protein did not change significantly between days 10–12 and 14–16 of the estrous cycle but increased on days 2–4 and 18–20. The anti-AQP9 antibody labeled epithelial cells of the oviduct. The expression of AQP9 did not change significantly between days 10–12 and 14–16 of the estrous cycle but increased on days 2–4 and 18–20. In pregnant gilts, expression of AQP1, 5, and 9 did not change significantly in comparison with the estrous cycle. Therefore, a functional and distinctive collaboration seems to exist among diverse AQPs in water handling during the different oviductal phases in the estrous cycle and early pregnancy.

  • immunolocalization of aquaporin 1 5 and 9 in the female pig reproductive system
    Journal of Histochemistry and Cytochemistry, 2009
    Co-Authors: Mariusz T Skowronski, Taehwan Kwon, Soren Nielsen
    Abstract:

    Thirteen mammalian aquaporin (AQP) isoforms have been identified, and they have a unique tissue-specific pattern of expression. AQPs have been documented in the reproductive system of both male and female humans, rats, and mice. However, tissue expression and cellular and subcellular localization of AQPs are unknown in the female reproductive system of pigs. In this study, AQP1 immunoreactivity was detected in the capillary endothelium of the ovary. Distinct immunolabeling of capillary endothelium was also observed in the oviduct and uterus. AQP5 was expressed in flattened follicle cells of primordial follicles, granulosa cells of developing ovarian follicles, and muscle cells of the oviduct and uterus. Staining of AQP5 was also observed in the epithelial cells of the oviduct and uterine epithelium. AQP9 immunoreactivity was observed in granulosa cells of developing follicles. AQP9 was also localized in the luminal epithelial cells of the oviduct and uterine epithelia cells. This is, to our knowledge, the first study that shows tissue expression and cellular and subcellular localization of AQPs in the reproductive system of the female pig. Moreover, these results suggest that several subtypes of the AQPs (AQP1, 5, and 9) are involved in regulation of water homeostasis in the reproductive system of gilts. (J Histochem Cytochem 57:61–67, 2009)

  • the role of aquaporin water channels in fluid secretion by the exocrine pancreas
    The Journal of Membrane Biology, 2006
    Co-Authors: Beata Burghardt, Soren Nielsen, Martin C Steward
    Abstract:

    The mammalian exocrine pancreas secretes a near-isosmotic fluid over a wide osmolarity range. The role of aquaporin (AQP) water channels in this process is now becoming clearer. AQP8 water channels, which were initially cloned from rat pancreas, are expressed at the apical membrane of pancreatic acinar cells and contribute to their osmotic permeability. However, the acinar cells secrete relatively little fluid and there is no obvious defect in pancreatic function in AQP8 knockout mice. Most of the fluid secreted by the pancreas is generated by ductal epithelial cells, which comprise only a small fraction of the gland mass. In the human pancreas, secretion occurs mainly in the intercalated ducts, where the epithelial cells express abundant AQP1 and AQP5 at the apical membrane and AQP1 alone at the basolateral membrane. In the rat and mouse, fluid secretion occurs mainly in the interlobular ducts where AQP1 and AQP5 are again co-localized at the apical membrane but appear to be expressed at relatively low levels. Nonetheless, the transepithelial osmotic permeability of rat interlobular ducts is sufficient to support near-isosmotic fluid secretion at observed rates. Furthermore, apical, but not basolateral, application of Hg2+ significantly reduces the transepithelial osmotic permeability, suggesting that apical AQP1 and AQP5 may contribute significantly to fluid secretion. The apparently normal fluid output of the pancreas in AQP1 knockout mice may reflect the presence of AQP5 at the apical membrane.

Paul J Donaldson - One of the best experts on this subject based on the ideXlab platform.

  • changes to zonular tension alters the subcellular distribution of aqp5 in regions of influx and efflux of water in the rat lens
    Investigative Ophthalmology & Visual Science, 2020
    Co-Authors: Rosica S Petrova, Nandini Bavana, Rusin Zhao, Kevin L Schey, Paul J Donaldson
    Abstract:

    Purpose The lens uses circulating fluxes of ions and water that enter the lens at both poles and exit at the equator to maintain its optical properties. We have mapped the subcellular distribution of the lens aquaporins (AQP0, AQP1, and AQP5) in these water influx and efflux zones and investigated how their membrane location is affected by changes in tension applied to the lens by the zonules. Methods Immunohistochemistry using AQP antibodies was performed on axial sections obtained from rat lenses that had been removed from the eye and then fixed or were fixed in situ to maintain zonular tension. Zonular tension was pharmacologically modulated by applying either tropicamide (increased) or pilocarpine (decreased). AQP labeling was visualized using confocal microscopy. Results Modulation of zonular tension had no effect on AQP1 or AQP0 labeling in either the water efflux or influx zones. In contrast, AQP5 labeling changed from membranous to cytoplasmic in response to both mechanical and pharmacologically induced reductions in zonular tension in both the efflux zone and anterior (but not posterior) influx zone associated with the lens sutures. Conclusions Altering zonular tension dynamically regulates the membrane trafficking of AQP5 in the efflux and anterior influx zones to potentially change the magnitude of circulating water fluxes in the lens.

  • changes to zonular tension alters the subcellular distribution of aqp5 in regions of influx and efflux of water in the rat lens
    bioRxiv, 2020
    Co-Authors: Rosica S Petrova, Nandini Bavana, Rusin Zhao, Kevin L Schey, Paul J Donaldson
    Abstract:

    Purpose: The lens utilizes circulating fluxes of ions and water that enter the lens at both poles and exit at the equator to maintain its optical properties. We have mapped the subcellular distribution of the lens aquaporins (AQP0, 1, & 5) in these water influx and efflux zones and investigated how their membrane location is affected by changes in tension applied to the lens by the zonules. Methods: Immunohistochemistry using AQP antibodies was performed on axial sections obtained from rat lenses that had been removed from the eye and then fixed, or were fixed in situ to maintain zonular tension. Zonular tension was pharmacologically modulated by applying either tropicamide (increased), or pilocarpine (decreased). AQP labelling was visualized using confocal microscopy. Results: Modulation of zonular tension had no effect on AQP1 or AQP0 labelling in either the water efflux, or influx zones. In contrast, AQP5 labelling changed from membranous to cytoplasmic in response to both mechanical and pharmacologically induced reductions in zonular tension in both the efflux zone, and anterior (but not posterior) influx zone associated with the lens sutures. Conclusions: Altering zonular tension dynamically regulates the membrane trafficking of AQP5 in the efflux and anterior influx zones to potentially change the magnitude of circulating water fluxes in the lens. KEYWORDS: Lens, water transport, immunohistochemistry, AQP0, AQP1, AQP5, zonular tension.