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Updated: Jun 2, 2026

Shape Memory Polymers for Active Cell Culture
Published on: July 4, 2011
A third measure-metastable state in the dynamics of spontaneous shape change in healthy human's white cells
1Fetzer Franklin Laboratory of the Cielo Institute, Asheville, North Carolina, USA. selz@cieloinstitute.org
Abstract:
Human polymorphonuclear leucocytes, PMN, are highly motile cells with average 12-15 µm diameters and prominent, loboid nuclei. They are produced in the bone marrow, are essential for host defense, and are the most populous of white blood cell types. PMN also participate in acute and chronic inflammatory processes, in the regulation of the immune response, in angiogenesis, and interact with tumors. To accommodate these varied functions, their behavior is adaptive, but still definable in terms of a set of behavioral states. PMN morphodynamics have generally involved a non-equilibrium stationary, spheroid Idling state that transitions to an activated, ellipsoid translocating state in response to chemical signals. These two behavioral shape-states, spheroid and ellipsoid, are generally recognized as making up the vocabulary of a healthy PMN. A third, "random" state has occasionally been reported as associated with disease states. I have observed this third, Treadmilling state, in PMN from healthy subjects, the cells demonstrating metastable dynamical behaviors known to anticipate phase transitions in mathematical, physical, and biological systems. For this study, human PMN were microscopically imaged and analyzed as single living cells. I used a microscope with a novel high aperture, cardioid annular condenser with better than 100 nanometer resolution of simultaneous, mixed dark field and intrinsic fluorescent images to record shape changes in 189 living PMNs. Relative radial roundness, R(t), served as a computable order parameter. Comparison of R(t) series of 10 cells in the Idling and 10 in the Treadmilling state reveals the robustness of the "random" appearing Treadmilling state, and the emergence of behaviors observed in the neighborhood of global state transitions, including increased correlation length and variance (divergence), sudden jumps, mixed phases, bimodality, power spectral scaling and temporal slowing. Wavelet transformation of an R(t) series of an Idling to Treadmilling state change, demonstrated behaviors concomitant with the observed transition.
Insights
Human polymorphonuclear leucocytes (PMN) exhibit a newly identified "Treadmilling" state, distinct from typical idling or translocating behaviors. This metastable state in healthy PMN displays characteristics predicting phase transitions, offering new insights into cell dynamics.
Area of Science:
- Cell biology
- Biophysics
- Immunology
Background:
- Human polymorphonuclear leucocytes (PMN) are crucial immune cells involved in host defense, inflammation, and angiogenesis.
- PMN exhibit distinct behavioral states, primarily a stationary 'Idling' spheroid state and an activated 'translocating' ellipsoid state.
- A third, 'random' state has been anecdotally linked to disease, but its characteristics in healthy cells remain underexplored.
Purpose of the Study:
- To investigate a previously uncharacterized 'Treadmilling' state observed in human PMN.
- To analyze the dynamic behaviors and potential phase transition characteristics of this 'Treadmilling' state in healthy PMN.
- To compare the morphodynamics of the 'Treadmilling' state with the established 'Idling' state.
Main Methods:
- Microscopic imaging of 189 individual living human PMN using a novel high-aperture cardioid annular condenser.
- Simultaneous acquisition of mixed dark field and intrinsic fluorescent images with sub-100 nm resolution.
- Analysis of cell shape changes using relative radial roundness, R(t), as a computable order parameter and wavelet transformation.
Main Results:
- The 'Treadmilling' state in healthy PMN exhibits metastable dynamics indicative of proximity to phase transitions.
- Observed behaviors include increased correlation length and variance, sudden jumps, mixed phases, bimodality, power spectral scaling, and temporal slowing.
- Wavelet transformation confirmed behaviors associated with state transitions from 'Idling' to 'Treadmilling'.
Conclusions:
- The 'Treadmilling' state represents a robust, dynamic behavioral repertoire in healthy human PMN, not solely indicative of disease.
- This state exhibits universal signatures of systems near critical transitions, offering a new perspective on PMN morphodynamics.
- Findings provide a deeper understanding of PMN adaptability and potential roles in biological systems.

