The impact of heavy metals on the physiological responses in Chaemocostus cuspidatus

Authors

DOI:

https://doi.org/10.14719/pst.3715

Keywords:

Anthocyanin Reflectance Index 2 (ARI 2), Heavy metals, Net photosynthetic rate (Pn), Photosynthetic active radiation (PAR), Water Band Index (WBI)

Abstract

Chamaecostus cuspidatus (insulin plant) is a medicinally important plant used in several medicines and as dietary supplements. Leaves of this plant have been used to treat diabetes since ancient times. Photosynthesis is a crucial aspect of plant physiology, ultimately affecting plant growth and metabolite production. In the current study, the plant was grown in controlled polyhouse conditions and treated with three heavy metals (Pb, Cr, and Cu). Five different concentrations (Pb and Cr- 50, 100, 150, 200, 250 ppm and for Cu- 25, 50, 75, 100, 125 ppm) of each metal were used for the treatment. Non-destructive methods were used for the study of physiological aspects of plants. CI-340 Handheld Photosynthesis System and CI-710s SpectraVue Leaf Spectrometer were used to measure approx 10 different parameters. Photosynthetic active radiation (PAR) was highest in Cu 100 (52.733 ± 0.466) treated plants. The highest Net photosynthetic rate (Pn) values were observed in Cr 200 (38.65 ± 0.384). The transpiration rate (E) was found to be highest in Cu 125 (0.846 ± 0.0202). Total chlorophyll content (CPHLT) and Chlorophyll Content Index (CCI) were also measured, and it was found to be highest in Cu 75 (30.344 ± 0.262) and Pb 150 (11.979 ± 0.231), respectively. Water Band Index (WBI), Normalized Difference Vegetation Index (NDVI), Anthocyanin Reflectance Index 2 (ARI 2), and Carotenoid Reflectance Index 2 (CRI 2) were also measured and analyzed for all the treatment groups along with control for each set. Statistical analysis represents significant differences among all the treated and control plants. These indices represent plant physiology, growth, and vegetative health of plants. Further biochemical and metabolite level studies can be done to further understand the effect of heavy metals on plant growth and metabolite production.

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References

Specht CD, Stevenson DW. A new phylogeny-based generic classification of Costaceae (Zingiberales). Taxon 2006;55(1):153-63. https://onlinelibrary.wiley.com/doi/10.2307/25065537

The plant list [Internet]. [cited 2024 Mar 20]. The plant list. http://www.theplantlist.org/tpl1.1/record/kew-343822

NCBI Taxonomy Browser [Internet]. [cited 2024 Mar 20]. NCBI Taxonomy Browser. https://www.ncbi.nlm.nih.gov/Taxonomy/Browser/wwwtax.cgi?name=Costus%20igneus

Hegde PK, Rao HA, Rao PN. A review on Insulin plant (Costus igneus Nak). Pharmacogn Rev [Internet]. 2014 Jan;8(15):67-72. http://dx.doi.org/10.4103/0973-7847.125536

Laha S, Paul S. Costus igneus-A Therapeutic Anti-diabetic Herb with Active Phytoconstituents. International Journal of Pharmaceutical Sciences and Research. 2019;10(8):3583-91.http://dx.doi.org/10.13040/IJPSR.0975-8232.10(8).3583-91

Mathew F, Varghese B. A review on medicinal exploration of Costus igneus: the insulin plant. Int J Pharm Sci Rev Res. 2019;54(2):51-7.

Shinde, Sonali, Samiksha Surwade, and Rachana Sharma. Costus igneus: insulin plant and its preparations as remedial approach for diabetes mellitus. International Journal of Pharmaceutical Sciences and Research 2022;13:1551-1558. http://dx.doi.org/10.13040/IJPSR.0975-8232.13(4)

Shankar BS. A critical assay of heavy metal pollution index for the groundwaters of Peenya Industrial Area, Bangalore, India. Environmental Monitoring and Assessment. 2019;191(5):289.http://dx.doi.org/10.1007/s10661-019-7453-9

Chandra R, Kang H. Mixed heavy metal stress on photosynthesis, transpiration rate, and chlorophyll content in poplar hybrids. Forest Sci Technol. 2016;12(2):55-61. https://doi.org/10.1080/21580103.2015.1044024

Olowoyo JO, Okedeyi OO, Mkolo NM, Lion GN, Mdakane STR. Uptake and translocation of heavy metals by medicinal plants growing around a waste dump site in Pretoria, South Africa. S Afr J Bot. 2012;78:116-21.

Nasim SA, Dhir B. Heavy metals alter the potency of medicinal plants. Rev Environ Contam Toxicol. 2010;203:139-49. http://dx.doi.org/10.1007/978-1-4419-1352-4_5

Baek SA, Han T, Ahn SK, Kang H, Cho MR, Lee SC, et al. Effects of heavy metals on plant growths and pigment contents in Arabidopsis thaliana. Plant Pathol J. 2012;28(4):446-52.

Kumar R, Others. Allelopathic effect Abutilon indicum and Parthenium hysterophorus on seed germination and seedling growth of wheat. International Journal of Science and Research. 2017; 6(1):808-10.

Gupta DK, Nicoloso FT, Schetinger MR, Rossato LV, Huang HG, Srivastava S, et al. Lead-induced responses of Pfaffia glomerata, an economically important Brazilian medicinal plant, under in vitro culture conditions. Bull Environ Contam Toxicol. 2011;86(3):272-7. http://dx.doi.org/10.1007/s00128-011-0226-y

Venkatachalam P, Jayalakshmi N, Geetha N, Sahi SV, Sharma NC, Rene ER, et al. Accumulation efficiency, genotoxicity and antioxidant defense mechanisms in medicinal plant Acalypha indica L. under lead stress. Chemosphere. 2017;171:544-53. http://dx.doi.org/10.1016/j.chemosphere.2016.12.092

Rai V, Khatoon S, Rawat AKS, Mehrotra S. Disruption of elements uptake due to excess chromium in Indian medicinal plants. Biol Trace Elem Res. 2007;120(1-3):127-32. http://dx.doi.org/10.1007/s12011-007-0071-3

Panda SK, Choudhury S. Chromium stress in plants. Braz J Plant Physiol. 2005 ;17(1):95-102.

Turek A, Wieczorek K, Wolf WM. Digestion Procedure and Determination of Heavy Metals in Sewage Sludge Analytical Problem. Sustain Sci Pract Policy. 2019; 11(6):1753.

CID Bio-Science. [cited 2024 Mar 26]. CI-340 Handheld Photosynthesis System. Available from: https://cid-inc.com/plant-science-tools/photosynthesis-measurement-plants/ci-340-handheld-photosynthesis-system/#Theory

Chandra S, Lata H, Khan IA, Elsohly MA. Photosynthetic response of Cannabis sativa L., an important medicinal plant, to elevated levels of CO2. Physiol Mol Biol Plants. 2011;17(3):291-5. http://dx.doi.org/10.1007/s12298-011-0066-6

CI-340 Handheld Photosynthesis System Portable gas (specification) [Internet]. [cited 2024 Mar 24]. CID Bio-Science. Available from: https://cid-inc.com/plant-science-tools/photosynthesis-measurement-plants/ci-340-handheld-photosynthesis-system/#Specifications

CI-710s SpectraVue Leaf Spectrometer (specification). [cited 2024 Mar 22]. CID Bio-Science. Available from: https://cid-inc.com/plant-science-tools/leaf-spectroscopy/ci-710-miniature-leaf-spectrometer/#Specifications

CI-710s SpectraVue Leaf Spectrometer (theory) [Internet]. [cited 2024 Mar 22]. CID Bio-Science. Available from: https://cid-inc.com/plant-science-tools/leaf-spectroscopy/ci-710-miniature-leaf-spectrometer/#Theory

Wei C, Luo G, Jin Z, Li J, Li Y. Physiological and Structural Changes in Leaves of Platycrater arguta Seedlings Exposed to Increasing Light Intensities. Plants. 2024 Apr 30;13(9):1263. https://doi.org/10.3390/plants13091263

Mosaleeyanon K, Zobayed SMA, Afreen F, Kozai T. Relationships between net photosynthetic rate and secondary metabolite contents in St. John’s wort. Plant Sci. 2005;169(3):523-31.

Yang Y, Zhang L, Huang X, Zhou Y, Quan Q, Li Y, et al. Response of photosynthesis to different concentrations of heavy metals in Davidia involucrata. PLoS One. 2020 ;15(3):e0228563. http://dx.doi.org/10.1371/journal.pone.0228563

Zhang, Y.F.; Chen, C.; Jin, Z.X.; Yang, Z.N.; Li, Y.L. Leaf anatomy, photosynthesis, and chloroplast ultrastructure of Heptacodium miconioides seedlings reveal adaptation to light environment. Environ Exp. Bot. 2022, 195, 104780 https://doi.org/10.1016/j.envexpbot.2022.104780

Ferreyroa GV, Lagorio MG, Trinelli MA, Lavado RS, Molina FV. Lead effects on Brassica napus photosynthetic organs. Ecotoxicol Environ Saf [Internet]. 2017 Jun;140:123-30. http://dx.doi.org/10.1016/j.ecoenv.2017.02.031

Boonupara T, Udomkun P, Kajitvichyanukul P. Quantitative Analysis of Atrazine Impact on UAV-Derived Multispectral Indices and Correlated Plant Pigment Alterations: A Heatmap Approach. Agronomy. 2024;14(4):814. https://doi.org/10.3390/agronomy14040814

MAG Maobe, E Gatebe, L Gitu, H Rotich. Profile of heavy metals in selected medicinal plants used for the treatment of diabetes, malaria and pneumonia in Kisii region, Southwest Kenya. Global Journal of pharmacology [Internet]. 2012

Nazir R, Khan M, Masab M, Rehman HU, Rauf NU, Shahab S, Ameer N, Sajed M, Ullah M, Rafeeq M, Shaheen Z. Accumulation of heavy metals (Ni, Cu, Cd, Cr, Pb, Zn, Fe) in the soil, water and plants and analysis of physico-chemical parameters of soil and water collected from Tanda Dam Kohat. Journal of pharmaceutical sciences and research. 2015;7(3):89.

Published

09-08-2024 — Updated on 11-08-2024

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How to Cite

1.
Versha D, Manjunath B. The impact of heavy metals on the physiological responses in Chaemocostus cuspidatus . Plant Sci. Today [Internet]. 2024 Aug. 11 [cited 2024 Nov. 23];11(3). Available from: https://horizonepublishing.com/journals/index.php/PST/article/view/3715

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Research Articles