Abstract
The Mie theory of scattering is used to provide new information on how changes in particle volume, with no change in dry weight, should influence light scattering for various scattering angles and particle sizes. Many biological cells (e.g., algal cells, erythrocytes) and large subcellular structures (e.g., chloroplasts, mitochondria) in suspension undergo this type of reversible volume change, a change which is related to changes in the rates of cellular processes. A previous study examined the effects of such volume changes on total scattering. In this paper scattering at 10 degrees is found to follow total scattering closely, but scattering at 45 degrees , 90 degrees , 135 degrees , and 170 degrees behaves differently. Small volume changes can cause very large observable changes in large angle scattering if the sample particles are uniform in size; however, the natural particle size heterogeneity of most samples would mask this effect. For heterogeneous samples of most particle size ranges, particle shrink-age is found to increase large angle scattering.
MeSH Terms
Cells/radiation effects
Chloroplasts/radiation effects
Colloids
Computers
Erythrocytes/radiation effects
Escherichia coli/radiation effects
Latex/radiation effects
Leukocytes/radiation effects
Light
Microspheres
Mitochondria/radiation effects
Models, Biological
Radiation Effects
Scattering, Radiation
Subcellular Fractions/radiation effects
Yeasts/radiation effects
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Latimer P
Pyle B E
References (11)
11 references, click to expand
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