Endocrine Distrupting Chemicals EDC Flashcards

1
Q

Issues

A

hormone impacts, humans (sex ratio), bird (nest change, pairing behaviour), amphibians & reptiles (under-developed organs), fish population skewed, imposex (molluscs)

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2
Q

Identifying

A

not direct, different types and properties

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3
Q

Disruption: Endocrine system

A

hormone production, chemical messengers, genes in DNA activation

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4
Q

Disruption: Non-hormone chemicals

A

interference

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5
Q

Disruption: EDC mimic natural hormones

A

receptor sites blocked, promote receptor site numbers

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6
Q

Impacts

A

oestrogenic - (APEs), pasticisers. Androgenic (TBT). Distrupting - Hg, Cd, Pb, lindane

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7
Q

Evaluation Schemes

A

Toxicity data? -> NOT EDC, Whole organism study, Screening (QSAR, in vitro) -> Wild life effect study - determine no effect concentration

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8
Q

QSAR Model

A

quantitative structure-activity relationship, 100’s EDC identified, controls implemented, begin with priority substances

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9
Q

Research Example - APEs alkylphenol ethoxylates

A

Industrial non-ionic surfactants: 80%, domestic & industrial cleaning products, formulations (paper & plastic industries)

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10
Q

Europe

A

voluntary ban UK - IPPC control

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11
Q

Industrial effluent

A

sewage treatment works transport

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12
Q

APE Degradation: Ethoxylate chain

A

temperature dependent loss/shortening of chain, 0% @ 15 degrees, 50% @ 20 degrees, 100% @ 28 degrees

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13
Q

APE Degradation: Increased ED

A

Impacts with short chain

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14
Q

APE Degradation: Residue

A

alkylphenol persistent

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15
Q

APE Biogeochemical Cycling

A

High distribution coefficient (Kd), degradation in river sediment?, environ. conc?, cycling within estuaries?

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16
Q

APE Behavior: Water

A

Conc. - <1ug/l, low degredation rate - dissolved form, low estuarine reactivity?

17
Q

APE Behaviour: Sediment

A

Concn - 0.1-3000 ug/kg, UK <50ug/kg, high sorptive capacity, upper sediment layers permit APE degradation 90% over 100 days, low sediment (low O2) - slow, degradation rates, APs persists

18
Q

APE Determination Analytical task: Seperate analyte

A

sample matrix (sediment/suspended solid 1 or water 2), extraction (soxhlet 2 or solid phase extraction SPE 1)

19
Q

APE Determination Analytical task: Pre-concentration Example

A

Sample 0.5 dm3 10ugdm-3 -> SPE column (80% efficient) 4ug -> Solvent 5cm3 (4ug in 0.005 dm3) 4x1000/5 = 800 ugdm-3

20
Q

APE Determination Analytical task: Analyse quantitatively

A

HPLC-Flourescence - very sensitive, low analyte concentrations, seperate analyte from residual matrix

21
Q

Energy graph

A

photon energy, e- excited go up energy level then go back down. Energy in is not equal Energy out

22
Q

Flourescence

A

Incident light in E1 then Flourescent light out E2, spectroscopy E1>E2. Measure at 90 degrees to incident, detect photons -> sensitive

23
Q

Summary: SPE (C2, ethylacetate eluent)

A

10-20X pre-concentration

24
Q

Summary: HPLC

A

NH2 column

25
Q

Summary: Flourescence detection

A

230nm excitation, 300 nm emission (detection limit 10ugdm-3)

26
Q

SPE-HPLC-Flourescence system for:

A

low environmental concentration (1-10 ugdm-3), difficult, varying matrix

27
Q

EDC in Environment: Chemicals

A

range & effect not completely understood/quantified

28
Q

EDC in Environment: Environmental input

A

varied, non-uniform approach to controls

29
Q

EDC in Environment: Environmental cycling

A

concentration & cycling known to some extent, some unkown EDC environmental persistence unclear

30
Q

Future model? Environmental chemistry

A

Interface with other (science & non-science) sectors