| Literature DB >> 35484326 |
Narin Printarakul1,2, Weeradej Meeinkuirt3.
Abstract
The species diversity and heavy metal accumulation in bryophytes were determined in Huay Pah Lahd stream in Doi Suthep-Pui National Park, Thailand. Eight bryophytes from two major taxonomic groupings (epilithic mosses and liverworts) were investigated. Of these, Fissidens crispulus var. crispulus was the most dominant taxon with an importance value (IV) of 28.98%, while Ectropothecium zollingeri, Claopodium prionophyllum, and Hyophila involuta were also dominant taxa with IV ≥ 10%. Scopelophila cataractae, a rare moss species with the lowest IV (0.91%) had the greatest capacity to accumulate metals in tissue, particularly Fe, Zn, Cd and Cu in protonemata (8026.7, 1187.2, 16.9 and 530.1 mg kg-1, respectively). The highest enrichment factors (EFs) of Zn, Cd and Cu (5.3, 2.4 and 0.9, respectively) were also found in S. cataractae, while the highest EFMn (1.1) was found in H. involuta. Enrichment factors of most heavy metals were < 5 from the study bryophytes, which suggests that natural processes were the key source of heavy metals. Dilution effects caused by increased water volume during the rainy season may be responsible for low pollutant loads and the maintenance of good water quality in this waterfall stream, which is favorable for biota and general environmental health.Entities:
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Year: 2022 PMID: 35484326 PMCID: PMC9050711 DOI: 10.1038/s41598-022-10980-9
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.996
Physicochemical properties of Pah Lahd stream.
| Parameter | Unit | Value |
|---|---|---|
| Total hardness | mg L−1 CaCO3 | 31.7 |
| Total solids | mg L−1 | 103 |
| Fluoride (F−) | mg L−1 | < 0.15 |
| Ammonia–nitrogen (NH3−-N) | mg L−1 | ND |
| Phosphate (PO43−) | mg L−1 | 0.02 |
| Chloride (Cl−) | mg L−1 | 6.2 |
| Total nickel (Ni) | mg L−1 | 0.056 |
| Nitrate-nitrogen (NO3−-N) | mg L−1 | 1.01 |
| Total Kjeldahl nitrogen (TKN) | mg L−1 | < 4.0 |
| Total organic carbon (TOC) | mg L−1 | ND |
| Biological oxygen demand (BOD) | mg L−1 | < 1.0 |
| Dissolved oxygen (DO) | mg L−1 | 5.03 |
| Temperature | °C | 25.3 |
| pH | 6.75 | |
| Depth | m | 0.4–1 |
Figure 1Species area curve showing relationship in numbers of subplot and numbers of species of bryophytes in Huay Pah Lahd stream, Doi Suthep-Pui national park.
Bryophyte diversity of three sampling plots (10-m2 per plot) along Huay Pah Lahd stream, Doi Suthep-Pui national park.
| Plots | Numbers of subplot use | Numbers of observed taxa (species richness, | Jackknife’s estimation total numbers of taxa | Shannon-Weiner index ( | Pielou’s evenness index | Total coverage of bryophytes (%) | Sampling completeness (%) |
|---|---|---|---|---|---|---|---|
| Plot 1 | 9 | 8 | 8.9 | 1.67 | 0.81 | 53.67 | 89.88 |
| Plot 2 | 11 | 6 | 7.0 | 1.43 | 0.79 | 48.54 | 85.71 |
| Plot 3 | 7 | 5 | 7.6 | 1.31 | 0.81 | 53.85 | 65.78 |
| Total | 27 | 8 | 9.9 | 1.13 | 0.54 | 51.63 | 80.80 |
Figure 2Rare species (A) and dominant taxa (B-D) of mosses grown on wet rocks in Huay Pah Lahd stream outflow, Doi Suthep-Pui national park: (A) S. cataractae; (B) E. zolligeri; (C) F. crispulus var. crispulus; and (D) C. prionophyllum.
Bryophyte community composition and structure of Huay Pah Lahd stream, Doi Suthep-Pui national park.
| Species | Family | F | RF (%) | AC | RC (%) | IV | IV (%) |
|---|---|---|---|---|---|---|---|
| 1. | Bryaceae | 5 | 7.35 | 0.74 | 1.43 | 8.79 | 4.39 |
| 2. | Leskeaceae | 10 | 14.71 | 8.96 | 17.36 | 32.07 | 16.03 |
| 3. | Hypnaceae | 16 | 23.53 | 14.89 | 28.84 | 52.37 | 26.18 |
| 4. | Fissidentaceae | 14 | 20.59 | 19.30 | 37.37 | 57.96 | 28.98 |
| 5. | Pottiaceae | 13 | 19.12 | 4.22 | 8.18 | 27.30 | 13.65 |
| 6. | Marchantiaceae | 5 | 7.35 | 1.19 | 2.30 | 9.65 | 4.82 |
| 7. | Porellaceae | 4 | 5.88 | 2.15 | 4.16 | 10.04 | 5.02 |
| 8. | Pottiaceae | 1 | 1.47 | 0.19 | 0.36 | 1.83 | 0.91 |
F = frequency; RF = relative frequency; AC = average percent cover; RC = relative cover; IV = importance value.
Heavy metal accumulation in bryophyte tissues (n = 3).
| Families | Botanical names | Plant part | Heavy metal accumulation (mg kg−1) | ||||
|---|---|---|---|---|---|---|---|
| Cu | Cd | Zn | Fe | Mn | |||
| Pottiaceae | Gametophyte (without protonema) | 506.0 ± 0.6b | 9.2 ± 0.1c | 846.1 ± 48.0b | 5434.3 ± 42.6de | 144.3 ± 3.5d | |
| Pottiaceae | Protonema | 530.1 ± 25.8a | 16.9 ± 0.5a | 1187.2 ± 393.6a | 8026.7 ± 164.0a | 144.5 ± 0.0d | |
| Porellaceae | Gametophyte | 8.5 ± 2.3d | 12.0 ± 1.8b | 161.3 ± 2.8c | 6877.6 ± 479.5b | 383.3 ± 36.9c | |
| Pottiaceae | Gametophyte | 9.6 ± 1.9d | 5.2 ± 0.6d | 129.4 ± 4.6c | 3962.5 ± 146.5f. | 467.2 ± 12.0ab | |
| Marchantiaceae | Thallus | 23.7 ± 1.4d | 8.7 ± 0.3c | 203.2 ± 17.4c | 4264.7 ± 111.9f. | 341.9 ± 23.6c | |
| Fissidentaceae | Gametophyte | 24.2 ± 4.0d | 8.2 ± 0.8c | 197.6 ± 0.2c | 5386.0 ± 171.3e | 448.6 ± 25.2b | |
| Leskeaceae | Gametophyte | 10.3 ± 3.2d | 8.2 ± 2.0c | 226.9 ± 26.6c | 6370.0 ± 371.6c | 504.6 ± 22.9a | |
| Hypnaceae | Gametophyte | 18.2 ± 3.0d | 4.8 ± 1.0d | 140.9 ± 8.3c | 4391.3 ± 87.5f. | 354.2 ± 18.4c | |
| Bryaceae | Gametophyte | 135.3 ± 21.2c | 6.2 ± 1.3d | 225.5 ± 16.7c | 5869.9 ± 273.6d | 482.6 ± 66.1ab | |
For each parameter, values followed by different letters indicate significant difference at 5% probability level.
Cu copper, Cd cadmium, Zn zinc, Fe iron, Mn manganese.
Heavy metal accumulation in bryophyte substrates (n = 3).
| Material | Heavy metal accumulation (mg kg−1) | ||||
|---|---|---|---|---|---|
| Cu | Cd | Zn | Fe | Mn | |
| Decayed Cu moss | 188.4 ± 8.4b | 1.9 ± 0.3a | 80.5 ± 5.7b | 1963.7 ± 99.7bc | 246.9 ± 2.3ab |
| Sediment substrate of shoot colony of | 251.6 ± 35.2a | 1.5 ± 0.1bcd | 59.3 ± 4.3c | 2289.4 ± 363.3b | 143.9 ± 28.9cd |
| Sediment substrate of protonemal colony of | 239.4 ± 1.4a | 1.7 ± 0.3ab | 65.9 ± 6.3c | 2345.3 ± 298.4b | 126.4 ± 3.0d |
| Rock substrate of | 56.3 ± 4.3c | 0.5 ± 0.2f | 34.9 ± 1.3d | 1259.9 ± 16.9d | 243.4 ± 38.6bc |
| Rock substrate of | 51.2 ± 15.6c | 0.3 ± 0.2f | 31.2 ± 4.7d | 1234.9 ± 40.1d | 202.6 ± 76.6bc |
| Sediment substrate of shoot colony of | 11.2 ± 0.9d | 1.7 ± 0.2abc | 122.6 ± 0.7a | 3127.1 ± 312.0a | 314.5 ± 8.5a |
| Sediment substrate of shoot colony of | 55.6 ± 1.7c | 1.2 ± 0.0de | 66.2 ± 1.2c | 1174.3 ± 2.1d | 297.7 ± 12.9a |
| Sediment substrate of shoot colony of | 57.5 ± 4.2c | 1.2 ± 0.1de | 66.8 ± 3.1c | 1172.8 ± 8.1d | 312.0 ± 14.3a |
| Sediment substrate of shoot colony of | 54.5 ± 4.1c | 1.2 ± 0.1de | 64.9 ± 3.3c | 1164.5 ± 16.3d | 301.4 ± 18.4a |
| Sediment substrate of shoot colony of | 60.8 ± 0.4c | 1.3 ± 0.0cde | 76.3 ± 5.8b | 1663.7 ± 99.8c | 312.0 ± 23.5a |
| Sediment substrate of shoot colony of | 56.5 ± 6.3c | 1.0 ± 0.1e | 62.7 ± 0.8c | 1156.6 ± 12.3d | 273.3 ± 29.3ab |
For each parameter, values followed by different letters indicate significant difference at 5% probability level.
Cu copper, Cd cadmium, Zn zinc, Fe iron, Mn manganese.
Figure 3Means for the enrichment factor (EF) of Cu, Cd, Zn and Mn (A-D) with corresponding standard deviations (SD) for four elements in bryophytes relative to the sediment substrates.