| Literature DB >> 21477270 |
François Chauvigné1, Esther Lubzens, Joan Cerdà.
Abstract
BACKGROUND: Increasing cell membrane permeability to water and cryoprotectants is critical for the successful cryopreservation of cells with large volumes. Artificial expression of water-selective aquaporins or aquaglyceroporins (GLPs), such as mammalian aquaporin-3 (AQP3), enhances cell permeability to water and cryoprotectants, but it is known that AQP3-mediated water and solute permeation is limited and pH dependent. To exploit further the possibilities of using aquaporins in cryobiology, we investigated the functional properties of zebrafish (Danio rerio) GLPs.Entities:
Mesh:
Substances:
Year: 2011 PMID: 21477270 PMCID: PMC3079631 DOI: 10.1186/1472-6750-11-34
Source DB: PubMed Journal: BMC Biotechnol ISSN: 1472-6750 Impact factor: 2.563
Figure 1Effect of pH on zebrafish GLPs and Aqp1a and human AQP3 expressed in . Oocytes were injected with 1 ng (DrAqp3b, -7, -9a, -9b, -10a, -1a or HsAQP3) or 10 ng (DrAqp3a and -10b) cRNA, or with 50 nl of water (controls). The osmotic water permeability (Pf) was measured in 10 times diluted MBS after 15 min of exposure to isotonic MBS at pH 6, 7.5 or 8.5. The swelling experiments were also performed at the corresponding pH. Data are the means ± SEM of three experiments (n = 10-12 oocytes for each aquaporin). Bars with different superscript in each panel indicate significant differences (ANOVA, p < 0.05) in Pf between aquaporin-injected oocytes. The asterisks denote significant differences with respect the control oocytes at a given pH (Student's t test, p < 0.05).
Cryoprotectant permeability (PS) of X. laevis oocytes expressing human AQP3 or zebrafish GLPs in isotonic solutions at different pH containing 160 mM of solutes
| pH 6.0 | pH 7.5 | pH 8.5 | pH 6.0 | pH 7.5 | pH 8.5 | pH 6.0 | pH 7.5 | pH 8.5 | |
|---|---|---|---|---|---|---|---|---|---|
| HsAQP3 | 9.95 ± 1.17 a | 35.22 ± 3.48 c | 49.62 ± 5.96 e | 10.05 ± 1.64 a | 28.93 ± 3.62 c | 38.14 ± 2.87 cd | 18.34 ± 2.32 b | 32.38 ± 2.87 c | 36.53 ± 3.28 c |
| DrAqp3a | 2.21 ± 0.40 a | 4.64 ± 0.97b | 32.64 ± 4.53 d | 5.73 ± 0.91 b | 16.09 ± 1.86 c | 71.08 ± 6.85 e | 3.76 ± 0.69 ab | 20.63 ± 3.18 c | 90.04 ± 6.02 f |
| DrAqp3b 1 | 1.71 ± 0.43 a | 12.81 ± 1.24 b | 57.37 ± 3.03 d | 1.92 ± 0.42 a | 28.27 ± 2.51 c | 70.08 ± 4.48 e | 1.46 ± 0.29 a | 79.22 ± 5.70 e | _ |
| DrAqp7 | nd | 97.99 ± 7.16 c | nd | nd | 40.76 ± 3.37 a | nd | Nd | 50.55 ± 2.81 b | nd |
| DrAqp9a | nd | 27.58 ± 1.85 a | nd | nd | 29.40 ± 3.19 a | nd | Nd | 61.62 ± 4.45 b | nd |
| DrAqp9b | nd | 52.48 ± 3.54 b | nd | nd | 31.27 ± 4.39 a | nd | Nd | 56.03 ± 4.30 b | nd |
| DrAqp10a | nd | 31.05 ± 3.01 b | nd | nd | 13.02 ± 1.45 a | nd | Nd | 19.14 ± 1.17 a | nd |
| DrAqp10b | 1.15 ± 0.16 a | 2.29 ± 0.32 b | 17.48 ± 2.25 ef | 2.45 ± 0.50 bc | 3.66 ± 0.51 c | 13.21 ± 1.35 e | 3.30 ± 0.99 bc | 6.70 ± 0.82 d | 18.58 ± 1.26 f |
Data are the means ± SEM (n = 10-12 oocytes per treatment) of 3-4 experiments performed on different batches of oocytes. Due to natural variations in oocyte permeability between batches of oocytes, the PS of water-injected oocytes (controls) is shown in parenthesis for each aquaporin. Oocytes were injected with 1 ng (DrAqp3b, -7, -9a, -9b, -10a, -1a, or HsAQP3) or 10 ng (DrAqp3a and -10b) cRNA, or with 50 nl of water. Data from the same row with different superscript are statistically significant (ANOVA, p < 0.05). nd, not determined.
1 No data available for PEG at pH 8.5 because DrAqp3b-expressing oocytes burst in 160 mM ethylene glycol.
Figure 2. (A) PEG of oocytes expressing different amounts of cRNA (1-40 ng) encoding HsAQP3 or DrAqp3b. Control oocytes were injected with 50 nl of water. The PEG was measured by swelling measurements during 20 sec in isotonic MBS containing 60 mM of ethylene glycol at pH 7.5. Values are the mean ± SEM of three experiments (n = 8-10 oocytes for each aquaporin). Data with an asterisk at the same cRNA dose are significantly different (Student's t test, p < 0.01). (B) Uptake of radiolabeled ethylene glycol of oocytes injected with 50 nl of water or 5 ng of HsAQP3 or DrAqp3b cRNA. Oocytes were exposed to isotonic MBS containing 1 mM cold ethylene glycol and 5 μM radiolabelled [1,2-3H]ethylene glycol for 1 min. Values (mean ± SEM; n = 8-10 oocytes) with different superscript are significantly (ANOVA, p < 0.01).
Figure 3Amino acid sequence alignment of zebrafish GLPs, Aqp1a and Aqp0a with mammalian and teleost orthologs. Amino acid sequence alignment of representative GLPs and water-selective aquaporins of teleosts and mammals: Danio rerio Aqp0a (DrAqp0a; FJ666326), -0b (FJ655389), -3a (EU341833), -3b (EU341832), -7 (FJ655385), -9a (FJ655387), -9b (EU341835), -10a (FJ655388), -10b (EU341836), and -1a (AY626937), Fundulus heteroclitus Aqp0a (FhAqp0; AF191906) and -3a (ACI49539), Homo sapiens AQP3 (HsAQP3; BC013566), and Bos taurus AQP0 (BtAQP0; NM_173937). Predicted transmembrane domains (TMD1-6) of DrAqp3b are annotated by blue arrows, and external (out) and internal (in) loops are indicated. The two NPA motifs are shaded in red, whereas the four residues forming the aromatic/arginine (ar/R) constriction in zebrafish GLPs (Phe, Gly/Ser, Tyr/Ala, and Arg) [48] are pointed by red arrowheads. Potential residues involved in pH sensitivity in AQP0 and -3 orthologs are shaded in green, and mutated residues in DrAqp3b are indicated by black arrowheads.
Amino acid sequences of zebrafish wild-type (WT) and mutated Aqp3b
| Construct | Loop A | Loop B | Loop C | Loop D | Loop E |
|---|---|---|---|---|---|
| DrAqp3b-WT | HILSGGS | SGGHINP | FATYPSK | IVDP | AVNP |
| H53A | HILSGGS | SGGHINPTVTFSLCLLGREPWRKFP | FATYPSKHLTLL | IVDPYNNPIPQGLEA | AVNPARDLGPRIFTAIAG |
| G54A | HILSGGSH | SGGHINPTVTFSLCLLGREPWRKFP | FATYPSKHLTLL | IVDPYNNPIPQGLEA | AVNPARDLGPRIFTAIAG |
| H53A/G54H | HILSGGS | SGGHINPTVTFSLCLLGREPWRKFP | FATYPSKHLTLL | IVDPYNNPIPQGLEA | AVNPARDLGPRIFTAIAG |
| H53A/G54H/T85A | HILSGGS | SGGHINP | FATYPSKHLTLL | IVDPYNNPIPQGLEA | AVNPARDLGPRIFTAIAG |
| T85A | HILSGGSHGMFLTV | SGGHINP | FATYPSKHLTLL | IVDPYNNPIPQGLEA | AVNPARDLGPRIFTAIAG |
| R95A | HILSGGSHGMFLTV | SGGHINPTVTFSLCLLG | FATYPSKHLTLL | IVDPYNNPIPQGLEA | AVNPARDLGPRIFTAIAG |
| E96A | HILSGGSHGMFLTV | SGGHINPTVTFSLCLLGR | FATYPSKHLTLL | IVDPYNNPIPQGLEA | AVNPARDLGPRIFTAIAG |
| R99A | HILSGGSHGMFLTV | SGGHINPTVTFSLCLLGREPW | FATYPSKHLTLL | IVDPYNNPIPQGLEA | AVNPARDLGPRIFTAIAG |
| H154A | HILSGGSHGMFLTV | SGGHINPTVTFSLCLLGREPWRKFP | FATYPSK | IVDPYNNPIPQGLEA | AVNPARDLGPRIFTAIAG |
| G54H/H154A | HILSGGSH | SGGHINPTVTFSLCLLGREPWRKFP | FATYPSK | IVDPYNNPIPQGLEA | AVNPARDLGPRIFTAIAG |
| H53A/H154A | HILSGGS | SGGHINPTVTFSLCLLGREPWRKFP | FATYPSK | IVDPYNNPIPQGLEA | AVNPARDLGPRIFTAIAG |
| H53A/G54H/H154A | HILSGGS | SGGHINPTVTFSLCLLGREPWRKFP | FATYPSK | IVDPYNNPIPQGLEA | AVNPARDLGPRIFTAIAG |
| A217T | HILSGGSHGMFLTV | SGGHINPTVTFSLCLLGREPWRKFP | FATYPSKHLTLL | IVDPYNNPIPQGLEA | AVNP |
| T85A/A217T | HILSGGSHGMFLTV | SGGHINP | FATYPSKHLTLL | IVDPYNNPIPQGLEA | AVNP |
| Y182A | HILSGGSHGMFLTV | SGGHINPTVTFSLCLLGREPWRKFP | FATYPSKHLTLL | IVDP | AVNPARDLGPRIFTAIAG |
Amino acid sequence of the five loops of WT and DrAqp3b mutants. The residues mutated and the substitutions are underlined in bold.
Figure 4Functional characterization of DrAqp3b mutants. (A) Pf of control oocytes (water-injected) and oocytes expressing 1 ng cRNA encoding wild-type DrAqp3b (DrAqp3b-WT) or different DrAqp3b mutants at different pH. Values are the mean ± SEM of three experiments (n = 8-10 oocytes per construct). The asterisks denote significant differences between WT and mutant DrAqp3b at a given pH (Student's t test, p < 0.05). (B) Immunofluorescence microscopy of water-injected oocytes (control), or oocytes expressing DrAqp3b-WT, -H53A, -H53A/G54H, -T85A and -H53A/G54H/T85A using an affinity purified anti-DrAqp3b antiserum. The arrowhead points to the oocyte plasma membrane. (C) Immunoblot of total membrane protein extracts of control oocytes or oocytes expressing DrAqp3b-WT treated or not with N-glycosidase F (PNGase F). The arrows indicate glycosylated and deglycosylated forms of DrAqp3b-WT. (D) Representative immunoblot of plasma membrane protein extracts of oocytes expressing increasing amounts of cRNA (1-8 ng) encoding DrAqp3b-WT, -T85A and -H53A/G54H/T85A treated with PNGaseF.
Figure 5Ethylene glycol uptake of DrAqp3b-WT and mutants at different pH. Uptake of radiolabeled ethylene glycol by oocytes injected with water or with 5 ng of DrAqp3b-WT, -T85A or -H53A/G54H/T85A cRNA was determined as in Figure 2. Data (mean ± SEM; n = 8-10 oocytes) with an asterisk are significantly (ANOVA, p < 0.01) different from the DrAqp3b-WT.
Figure 6Changes in cell volume of oocytes expressing DrAqp3b-WT, DrAqp3b mutants or HsAQP3 in hypertonic solutions. (A) Oocytes expressing 1 ng of DrAqp3b-WT, -T85A, -H53A/G54H/T85A or HsAQP3 were exposed to 0.9 M sucrose in MBS for 10 min. (B-C) Oocytes expressing 1 (B) or 20 (C) ng of the same constructs were exposed to 1.3 M ethylene glycol in MBS for 10 min. Data from all panels are means ± SEM of 15-24 oocytes from 3-4 different batches.
Hydraulic conductivity (Lp) of X. laevis oocytes expressing wild-type (WT) DrAqp3b, DrAqp3b mutants or HsAQP3 determined after 2 or 10 min in a sucrose solution
| 2 min | 10 min | |
|---|---|---|
| Water | 1.40 ± 0.06 a | 0.69 ± 0.03 a |
| DrAqp3b-WT | 2.15 ± 0.06 c | 0.89 ± 004 b |
| DrAqp3b-H53A/G54H/T85A | 1.94 ± 0.08 b | 0.88 ± 004 b |
| DrAqp3b-T85A | 2.57 ± 0.07 d | 1.02 ± 0.04 c |
| HsAQP3 | 1.93 ± 0.07 b | 0.87 ± 0.03 b |
Values (mean ± SEM) for water- and aquaporin-injected (1 ng cRNA) oocytes are calculated from the data in Figure 6A. Data from the same column with different superscript are statistically significant (ANOVA, p < 0.05).
Hydraulic conductivity (Lp) and ethylene glycol permeability (PEG) of X. laevis oocytes expressing wild-type (WT) DrAqp3b, two DrAqp3b mutants or HsAQP3, in hypertonic ethylene glycol solution
| Water | 0.36 ± 0.02 a | 0.47 ± 0.03 a |
| DrAqp3b-WT (1 ng) | 2.15 ± 0.14 c | 17.59 ± 0.83 d |
| DrAqp3b-H53A/G54H/T85A (1 ng) | 1.55 ± 0.13 b | 13.06 ± 0.72 c |
| DrAqp3b-T85A (1 ng) | 2.64 ± 0.15 d | 25.49 ± 1.56 e |
| HsAQP3 (1 ng) | 1.31 ± 0.08 b | 10.73 ± 0.59 b |
| DrAqp3b-WT (20 ng) | 2.63 ± 0.07 d | 40.06 ± 1.22 c |
| DrAqp3b-H53A/G54H/T85A (20 ng) | 2.27 ± 0.07 c | 36.58 ± 1.74 c |
| DrAqp3b-T85A (20 ng) | 3.24 ± 0.08 e | 53.91 ± 2.55 d |
| HsAQP3 (20 ng) | 1.96 ± 0.08 b | 22.24 ± 0.95 b |
Values (mean ± SEM) for water- and aquaporin-injected (1 or 20 ng cRNA) oocytes are calculated from the data in Figure 6B and C. For each cRNA dose, data with different superscript are statistically significant (ANOVA, p < 0.05).
Ethylene glycol content (mol/l) of X. laevis oocytes expressing different amounts of cRNA encoding wild-type (WT) DrAqp3b, two DrAqp3b mutants, or HsAQP3, after immersion in hypertonic ethylene glycol solution
| cRNA injected | ||
|---|---|---|
| 1 ng | 20 ng | |
| Water | 0.11 ± 0.004 a | |
| DrAqp3b-WT | 0.24 ± 0.01 c | 0.34 ± 0.02 d |
| DrAqp3b-H53A/G54H/T85A | 0.20 ± 0.01 b | 0.29 ± 0.01 c |
| DrAqp3b-T85A | 0.33 ± 0.02 d | 0.43 ± 0.01 e |
| HsAQP3 | 0.20 ± 0.01 b | 0.24 ± 0.01 b |
Data are the mean ± SEM (n = 12-18 oocytes) of two different experiments. Data in parenthesis are in pmol/oocyte/min. Values from the same column with different superscript are statistically significant (ANOVA, p < 0.05).