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Biology subjects

Singer, H.

Publications and source records attributed to Singer, H..

3 recordsLinked to original sources

Cultivation, chemistry, and genome of Psilocybe zapotecorum

Psilocybe zapotecorum is a strongly blue-bruising psilocybin mushroom used by indigenous groups in southeastern Mexico and beyond. While this species has a rich history of ceremonial use, research into its chemistry and genetics have been limited. Herein, we detail mushroom morphology and report on cultivation parameters, chemical profile, and the full genome sequence of P. zapotecorum. First, growth and cloning methods are detailed that are simple, and reproducible. In combination with high resolution microscopic analysis, the strain was barcoded, confirming species-level identification. Full genome sequencing reveals the architecture of the psilocybin gene cluster in P. zapotecorum, and can serve as a reference genome for Psilocybe Clade I. Characterization of the tryptamine profile revealed a psilocybin concentration of 17.9{+/-}1.7 mg/g, with a range of 10.6-25.7 mg/g (n=7), and similar tryptamines (psilocin, baeocystin, norbaeocystin, norpsilocin, aeruginascin, 4-HO-tryptamine, and tryptamine) in lesser concentrations for a combined tryptamine concentration of 22.5{+/-}3.2 mg/g. These results show P. zapotecorum to be a potent - and variable - Psilocybe mushroom. Chemical profiling, genetic analysis, and cultivation assist in demystifying these mushrooms. As clinical studies with psilocybin gain traction, understanding the diversity of psilocybin mushrooms will assure that psilocybin therapy does not become synonymous with psilocybin mushrooms.

molecular biology↗

Assessing Lanthanide-Dependent Methanol Dehydrogenase Activity: The Assay Matters

Artificial dye-coupled assays have been widely adopted as a rapid and convenient method to assess the activity of methanol dehydrogenases (MDH). Lanthanide(Ln)-dependent XoxF-MDHs from methanotrophs and methylotrophs are able to incorporate different lanthanides (Lns) in their active site. The artificial dye-coupled assay showed that the earlier Lns exhibit a higher enzyme activity than the late Lns. Although this assay is widely used, there are limitations. It is not unusual that a pH of 9 is required and that activators like ammonium have to be added to the assay mixture which do not reflect the conditions inside the cell. Moreover, different Ln-MDH variants are not obtained by the direct isolation from the cells grown with the respective Ln, but by metal titration of the Ln in a partial-apo-MDH or by incubation of an apo-MDH with the Ln. Herein, we report the cultivation of Ln-dependent methanotroph Methylacidiphilum fumariolicum SolV with nine different Lns, the isolation of the respective MDH and the assessment of the enzyme activity using the artificial dye-coupled assay. We compare these results with an adapted protein-coupled assay using the physiological partner and electron acceptor cytochrome cGJ (cyt cGJ) instead of artificial dyes. We demonstrate that, depending on the assay, two distinct trends are observed among the Ln series. The specific activity of La-, Ce- and Pr-MDH, as measured by the protein-coupled assay, exceeds the specific enzyme activity measured by the dye-coupled assay. This suggests that the early Lns also have a positive effect on the interaction between XoxF-MDH and its cyt cGJ thereby increasing functional efficiency.

biochemistry↗

Nerve-mediated amputation-induced stem cell activation primes distant appendages for future regeneration events in axolotl

Many species regenerate lost body parts following amputation. Most limb regeneration research has focused on the immediate injury site. Meanwhile, body-wide injury responses remain largely unexplored but may be critical for regeneration. Here, we discovered a role for the sympathetic nervous system in stimulating a body-wide stem cell activation response to amputation that drives enhanced limb regeneration in axolotls. This response is mediated by adrenergic signaling, which coordinates distant cellular activation responses via the 2A-adrenergic receptor, and local regeneration responses via {beta}-adrenergic receptors. Both 2A- and {beta}-adrenergic signaling act upstream of mTOR signaling. Notably, systemically-activated axolotls regenerate limbs faster than naive animals, suggesting a potential selective advantage in environments where injury from cannibalism or predation is common. This work challenges the predominant view that cellular responses underlying regeneration are confined to the injury site and argues instead for body-wide cellular priming as a foundational step that enables localized tissue regrowth.

developmental biology↗