| Literature DB >> 32046160 |
Yungui Li1,2, Xiang Luo1,2, Xueying Bai1,2, Wenxuan Lv1,2, Yang Liao1,2.
Abstract
Leaf cuticle sorption is one important process for the uptake of environment pollutants in plants, and mixed powder including adaxial and abaxial cuticle is generally used to demonstrate the sorption behavior. However, the difference of adaxial and abaxial cuticle on plant cuticle sorption is not well understood. Abaxial cuticle (PAC) and adaxial cuticle (PBC) were isolated from hypostomatic Photinia serrulata to investigate their adsorption of a model radionuclide (strontium). The elemental composition and FTIR spectra for two cuticles were quite similar and both show high affinity (H/C, 1.59 and 1.65) and polarity ((O + N)/C, 0.470 and 0.499). Both adsorption isotherms fit well with Langmuir model (R2, 0.97 and 0.97), and the maximum adsorption capacity of PAC was 12.1 mg/g, little higher than that of PBC (10.3 mg/g). Adsorption of strontium increased with the increase of pH, and the maximum was attained when pH ≥4. Electrostatic attraction was demonstrated to be the main mechanism of -strontium adsorption onto PAC and PBC, and the similar adsorption of adaxial and abaxial cuticle was consistent with their similar isoelectric point.Entities:
Keywords: abaxial; adaxial; adsorption; leaf cuticle; strontium
Year: 2020 PMID: 32046160 PMCID: PMC7038059 DOI: 10.3390/ijerph17031061
Source DB: PubMed Journal: Int J Environ Res Public Health ISSN: 1660-4601 Impact factor: 3.390
Figure 1Graph of selected adaxial (PAC) and abaxial (PBC) cuticle as well as adaxial and abaxial Photinia serrulata Leaf.
Figure 2SEM micrographs of adaxial (PAC) and abaxial (PBC) cuticle of Photinia serrulata Leaf.
Yields and elemental analysis of adaxial (PAC) and abaxial (PBC) cuticle of Photinia serrulata Leaf.
| Sample | Yield/% | C/% | H/% | N/% | O/% | H/C | (O + N)/C |
|---|---|---|---|---|---|---|---|
| adaxial cuticle | 7.01 | 56.88 | 7.55 | 0.45 | 35.12 | 1.59 | 0.47 |
| abaxial cuticle | 5.78 | 55.60 | 7.63 | 0.45 | 36.32 | 1.65 | 0.50 |
Notes: a Yield of cuticles was calculated to the percentage contents of correspondingly fresh weight of leaves. b Oxygen content was calculated by the mass difference.
Figure 3FTIR spectra of adaxial (PAC) and abaxial (PBC) cuticle of Photinia serrulata Leaf.
Figure 4Adsorption kinetic of Sr by adaxial (PAC) and abaxial (PBC) cuticle of Photinia serrulata Leaf.
Figure 5The adsorption isotherm and the adsorption percentage of Sr by adaxial (PAC) and abaxial (PBC) cuticles of Photinia serrulat Leaf. The solid and open legends represent the mass of adsorbed Sr () and adsorption percentage of Sr (R%) in an equilibrated system.
Regression parameters of Langmuir and Freundlich model for the sorption of Strontium by adaxial (PAC) and abaxial (PBC) cuticle of Photinia serrulata Leaf.
| Sample | Langmuir Regression Parameters | Freundlich Regression Parameters | ||||
|---|---|---|---|---|---|---|
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|
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| PAC | 0.125 ± 0.023 | 12.1 ± 0.71 | 0.97 | 2.15 ± 0.32 | 0.415 ± 0.044 | 0.92 |
| 0.109 ± 0.021 | 10.3 ± 0.64 | 0.97 | 1.76 ± 0.20 | 0.417 ± 0.032 | 0.96 | |
Notes: is the amount sorbed per unit weight of sorbent, mg·g−1; is the equilibrium concentration, mg·L−1; [(mg/g)/(mg/L)N] is the Freundlich capacity coefficient; and N (dimensionless) describes the isotherm curvature. R2 is regression coefficient.
Figure 6Effect of pH on Sr adsorption and zeta potential of adaxial (PAC) and abaxial (PBC) cuticle with and without Sr loading.
Figure 7Solution pH before and after Sr adsorption by adaxial (PAC) and abaxial (PBC) cuticle of Photinia serrulata Leaf.
Figure 8Relationship of removal rate and the change of zeta potential of cuticle before and after Sr adsorption by adaxial (PAC) and abaxial (PBC) cuticle of Photinia serrulata Leaf.
Figure 9FTIR spectrometer of cuticle before and after Sr adsorption by adaxial (PAC) and abaxial (PBC) cuticle of Photinia serrulata Leaf.