[New York University] NYU researchers have made microscopic oil droplets in water do something usually reserved for living cells: change shape in complex, controllable ways, and even engulf their surroundings.

The findings, published in Nature Communications, show that some of life’s signature behaviors—like morphing into complex shapes and capturing material—can emerge from physics and chemistry alone, without genes, proteins, or active cellular machinery.

One of life’s defining features is morphogenesis—the ability of cells and tissues to reshape themselves, form compartments, and engulf material from their surroundings. These remarkable transformations normally rely on a sophisticated molecular toolkit.

Can this shape-shifting behavior be replicated in synthetic particles to mimic features unique to living organisms? Yes, the researchers learned—and all you need is oil, water, and soap-like molecules.

“What surprised us is that you don’t need that cellular machinery to get the same kinds of behavior,” said Stefano Sacanna, professor of chemistry at NYU and the study’s co-senior author.

Sacanna and his colleagues combined microscopic oil droplets floating in water with a soap-like molecule named P123 block copolymer. When the soap-like molecule is added to the spherical oil droplets in water, the droplets spontaneously morph into a range of shapes, including flower-like structures, branching tree-like forms (akin to dendritic immune cells), dumbbells, discs, and cups.

This process is controllable and, unlike in cells in almost all living creatures, is reversible: by adjusting the concentration of the soap molecule, or simply warming and cooling the sample, the researchers could steer the droplets from one shape to another and back again, reversing the morphogenetic pathway.

Moreover, they found that the droplets can swallow their surroundings. Under the right conditions, a droplet folds in on itself, wraps around the surrounding fluid, and traps whatever is floating nearby inside.

Robustness of morphogenic transitions across oil chemistries. a,c,e Representative DIC micrographs of droplets prior to exposure to P123 for three chemically distinct precursors forming the oil droplets: TPM (3-(trimethoxysilyl)propyl methacrylate, a reactive silane-based monomer capable of network formation upon oligomerization), DMDES (dimethyldiethoxysilane, a nonnetwork-forming silane), and a fluorinated silane (trimethoxy(3,3,3-trifluoropropyl)silane, characterized by low surface energy and lipophobic character). Droplets were formed by self-emulsification through base-catalyzed (NaOH) hydrolysis and self-condensation (see Methods). Scale bars, 10 µm. b,d,f Corresponding morphologies after exposure to P123 at comparable concentrations (0.012 wt.%), showing the emergence of similar dendritic structures in all cases. Insets show other morphologies obtained at lower BCP concentrations. Scale bars, 10 µm. Despite the marked chemical (and size) differences between these oils, comparable morphogenic transitions are observed. This indicates that the phenomenon is not specific to a particular oil chemistry, but instead requires that the oil phase acts as a sink for the BCP, allowing sufficiently high concentrations in the oil phase to reach the CMC within the oil phase. Under these conditions, the formation and swelling of inverted micellar structures drive the observed shape transformations, highlighting a general mechanism governed by amphiphile partitioning, osmotic swelling and interfacial mechanics. — Nature Communications

“This swallowing behavior closely mirrors a cellular process called macropinocytosis, sometimes described as ‘cell drinking,’ where a cell gulps down a bit of its surroundings. Our droplets do this on their own, with no biological parts involved,” said Florent Fessler, a postdoctoral associate at NYU and the study’s first author.

The researchers note that while their experiments remind them of the morphogenesis behavior of cells, they are not reproducing cell biochemistry, nor creating artificial life. However, their discovery constitutes a model system to study how cells shape and form their structures.

“These changes are difficult to isolate in living cells, so a model system provides a simpler, more controlled platform to study the physical principles behind cellular behavior,” said Paul Chaikin, Silver Professor of Physics at NYU and the study’s co-senior author.

The findings also hold promise for developing smart, adaptive materials that can reshape in response to their environment or capture cargo upon demand.

“Under the right conditions, these droplets can restructure and engulf what’s around them, forming a protective capsule or shell. This tiny container could protect precious cargo—and because this shape change is non-specific and quite versatile, it could have many potential applications,” said Sacanna.

Additional study authors include Adam W. Hauser, Hailiang Liu, and Zhe Xu of NYU. The research was supported by the Department of Energy (DE-SC0020971).

Morphogenic colloids, Nature Communications (open access)

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