Author:
Chicas-Mosier A. M.,Black T. E.,Hester K. P.,Belzunces L. P.,Abramson C. I.
Abstract
Abstract
Background
Aluminum is the third most prevalent element in the earth’s crust. In most conditions, it is tightly bound to form inaccessible compounds, however in low soil pH, the ionized form of aluminum can be taken up by plant roots and distributed throughout the plant tissue. Following this uptake, nectar and pollen concentrations in low soil pH regions can reach nearly 300 mg/kg. Inhibition of acetylcholinesterase (AChE) has been demonstrated following aluminum exposure in mammal and aquatic invertebrate species. In honey bees, behaviors consistent with AChE inhibition have been previously recorded; however, the physiological mechanism has not been tested, nor has aversive conditioning.
Results
This article presents results of ingested aqueous aluminum chloride exposure on AChE as well as acute exposure effects on aversive conditioning in an Apis mellifera ligustica hive. Contrary to previous findings, AChE activity significantly increased as compared to controls following exposure to 300 mg/L Al3+. In aversive conditioning studies, using an automated shuttlebox, there were time and dose-dependent effects on learning and reduced movement following 75 and 300 mg/L exposures.
Conclusions
These findings, in comparison to previous studies, suggest that aluminum toxicity in honey bees may depend on exposure period, subspecies, and study metrics. Further studies are encouraged at the moderate-high exposure concentrations as there may be multiple variables that affect toxicity which should be teased apart further.
Funder
Directorate for Biological Sciences
Division of Graduate Education
Publisher
Springer Science and Business Media LLC
Subject
Animal Science and Zoology
Reference51 articles.
1. Abramson CI, Stone SM, Ortez RA, Luccardi A, Vann KL, Hanig KD, et al. The development of an ethanol model using social insects I: behavior studies of the honey bee (Apis mellifera L.). Alcohol Clin Exp Res. 2000;24:1153–66.
2. Agency for Toxic Substances and Disease Registry (ATSDR) (2008a) Toxicological Profile for Aluminum. Division of Toxicology and Human Health Sciences, https://www.atsdr.cdc.gov/toxprofiles/tp.asp?id=191&tid=34. Accessed 11 August 2020.
3. Agency for Toxic Substances and Disease Registry (ATSDR) (2008b) Public Health Statement Aluminum (CAS #: 7429-90-5), https://www.atsdr.cdc.gov/ToxProfiles/tp22-c1-b.pdf. Accessed 12 July 2021.
4. Al-Hazmi MA, Rawi SM, Hamza RZ. Biochemical, histological, and neuro-physiological effects of long-term aluminum chloride exposure in rats. Metab Brain Dis. 2021;36:429–36 https://doi.org/10.1007/s11011-020-00664-6.
5. Andrews JA, Schlesinger WH. Soil CO2 dynamics, acidification, and chemical weathering in a temperate forest with experimental CO2 enrichment. Glob Biogeochem Cycles. 2001;15:149–62. https://doi.org/10.1029/2000GB001278.
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