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Patrick Erickson

@drpatricke.bsky.social
81 followers 340 following 5 posts

🐙 postdoc in the levin lab at tufts studying cell learning, aging scholar.google.com/citations?user=l…

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Patrick Erickson @drpatricke.bsky.social · 03/09/2026
How to train your cells: check out our new platform! In @drmichaellevin.bsky.social's lab, we aim to extend the growing field of single-cell learning to non-neural human cells, enabling scientists to study training techniques as a new approach to medicine and bioengineering
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Mike Levin @drmichaellevin.bsky.social · 16/08/2026
New #preprint: led by @drpatricke.bsky.social An important step in our efforts to create tools for the community to accelerate discovery in diverse intelligence as relates to biomedicine and beyond: biorxiv.org/cgi/content/... "A platform for automated training of mammalian cell physiology"
biorxiv.org
A platform for automated training of mammalian cell physiology
Controlling cell physiology is difficult, not only because of cells' complexity, but also their capacity for real-time adaptation to interventions, leading to challenges such as drug resistance and transgene silencing. Accumulating evidence suggests that this adaptivity resembles classical forms of learning defined in behavioral science. However, a lack of appropriate platforms has led to gaps in our understanding of cells' capacity for adaptive problem-solving in physiological and transcriptional space. Here, we present a device, the Cell Trainer, capable of performing a wide variety of automated training experiments on non-neural mammalian cells, using timed drug pulses as the stimulus, and a mobile fluorescence microscope to capture images of responses, across replicate cultures. The Cell Trainer can operate in either an open-loop (feedforward) or closed-loop (feedback-controlled) mode, and our image analysis pipeline can report the behaviors of individual cells throughout each experiment and quantify population heterogeneity. We showcase the ability of the Cell Trainer to execute experimental protocols and perform single-cell analyses in both modes. We first demonstrate with a feedforward experiment in which myoblasts are repeatedly pulsed with dimethyl sulfoxide (DMSO) and their discrete calcium responses are analyzed, revealing sensitization-like dynamics. Next, we demonstrate a feedback control scheme wherein the fluorescence of a pH/voltage reporter in kidney cells is maintained below a threshold level with controlled pulses of acid. To accelerate research in the field of cell training, learning, and memory, we are openly sharing the Cell Trainer schematics and software with the research community. This platform provides a flexible tool for studying how cellular physiological states can be shaped by patterned stimulation and feedback control through approaches that work with the native adaptive competencies of cells. ### Competing Interest Statement This research was partially funded at Tufts under a Sponsored Research Agreement with Astonishing Labs. M.L. is a co-founder and shareholder of Astonishing Labs. Astonishing Labs has certain rights to any inventions associated with this research. Templeton World Charity Foundation, https://ror.org/00x0z1472 John Templeton Foundation, https://ror.org/035tnyy05, 62212 Astonishing Labs
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Mike Levin @drmichaellevin.bsky.social · 30/07/2026
New #preprint: @steffikapsetaki.bsky.social , Tomer Landsberger www.biorxiv.org/content/10.6... Do individual planaria exposed to the same stressor find the same, or different, transcriptional solutions to that problem? 🧪
biorxiv.org
Transcriptional Profiling of Planarian Regeneration Habituating to Physiological Stressor Reveals Individual and Collective Dynamics
Exposure to the potassium channel blocker barium chloride (BaCl₂) causes head degeneration in Dugesia japonica flatworms, followed by regeneration of BaCl₂-insensitive heads, offering a unique model f...
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Ashkaan K. Fahimipour @akfbio.bsky.social · 22/05/2026
Reptiles with longer Wikipedia pages tend to be bigger. The relationship is a power law with exponent = 0.85. I guess humans really like writing about big lizards? The longest article is the Komodo Dragon.
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Elias Najarro @najarro.science · 16/03/2026
Call for papers for 'Artificial Life for Science and Engineering' at ALife 26. We seek work applying ALife concepts and tools to model real-world systems and engineer solutions — and assist scientific discovery through open-ended and curiosity-driven search. Call info: alifeforscience.github.io
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Dr. Stefania Kapsetaki @steffikapsetaki.bsky.social · 09/07/2025
What is the bioelectric pattern of immortality and mortality in hydra? Happy to share our latest work with Angelina Pimkina, Patrick McMillen, @parandetayyebi.bsky.social, @drpatricke.bsky.social, and @drmichaellevin.bsky.social in the journal Bioelectricity! www.liebertpub.com/doi/10.1089/...
liebertpub.com
The Bioelectrics of Immortality and Mortality in Cold-Sensitive Hydra oligactis | Bioelectricity
Introduction: Bioelectric properties of cells are an important aspect of development, regeneration, and cancer. Because of their relevance to the establishment and maintenance of tissue form and funct...
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Mike Levin @drmichaellevin.bsky.social · 24/04/2025
Some interesting aspects of Xenobot transcriptome! @paivaibhav.bsky.social , Leo Pio-Lopez, Megan Sperry, @drpatricke.bsky.social, @parandetayyebi.bsky.social www.nature.com/articles/s42...
nature.com
Basal Xenobot transcriptomics reveals changes and novel control modality in cells freed from organismal influence - Communications Biology
Basal Xenobot transcriptome shows unique up-regulation of evolutionarily ancient systems driven by its nascent emergent life history, including changes of metabolism and functional sensory perception ...
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Mike Levin @drmichaellevin.bsky.social · 20/04/2025
Ever wonder what a neural network would look like in a novel organism w/o selection for specific structure and function? New #preprint with morphological, behavioral, electrophysiological, and transcriptomic analysis of a new kind of Xenobot with a nervous system: www.biorxiv.org/content/10.1...
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