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Bernhard, S.

Publications and source records attributed to Bernhard, S..

3 recordsLinked to original sources

A new phylogenetic framework for the genus Kalanchoe (Crassulaceae) and implications for infrageneric classification

Background and AimsKalanchoe is a diverse genus in the Crassulaceae, with a centre of diversity in Madagascar and sub-Saharan Africa. The genus is known for its popularity in horticulture, its use as a model system for research on CAM photosynthesis and vegetative reproduction, its high invasive potential, and its use in traditional medicine. The genus-rank circumscription and infrageneric classification of Kalanchoe has been the subject of debate for centuries, especially regarding the status and rank of what is now treated as K. subg. Bryophyllum and K. subg. Kitchingia. We aim to generate a densely sampled phylogeny of Kalanchoe s.l. and evaluate the current infrageneric classification system. MethodsWe inferred a phylogenetic tree for Kalanchoe using a ddRAD sequencing approach, covering 70% of taxa and four out of five subgenera currently recognised in the genus. Key ResultsWe recovered four well-supported clades, partially corresponding to the current subgeneric classification. Kalanchoe subg. Calophygia resolves as sister to the rest of the genus. The relationships among the three remaining clades, however, receive less support. The predominantly mainland African K. subg. Kalanchoe forms a strongly supported clade that resolves as sister to K. subg. Bryophyllum. These two clades are together sister to a clade containing mainly species from K. subg. Kitchingia and K. sect. Pubescentes. ConclusionsThe current subgeneric classification of Kalanchoe is partially backed up by our phylogenetic tree but requires further refinement. The tree topology suggests a Malagasy origin of the genus and one dispersal event to the African mainland, with subsequent dispersal from continental Africa to the Arabian Peninsula and Southeast Asia. The formation of bulbils on the leaf margin is restricted to a larger clade within K. subg. Bryophyllum and thus only evolved once. Our tree provides a framework for further taxonomic, evolutionary, and physiological research on the genus.

evolutionary biology↗

Reinforced polymer-nanoparticle hydrogels for subcutaneous and sustained delivery of trastuzumab

In oncology, the advent of monoclonal antibody (mAbs) therapeutics represents a major breakthrough in various cancer diseases. However, these biotherapies often necessitate iterative hospital visits for intravenous infusion that can alter patients quality of life and contribute to the chronic saturation of hospitals. Interestingly, subcutaneous formulations of various mAbs offer a promising alternative facilitating faster administration compared with traditional intravenous methods, while still maintaining the same dosing schedule and providing time-saving advantages. Here, we developed an injectable mAb delivery platform using -cyclodextrin (CD)-reinforced polymer-nanoparticle hydrogels to perform a subcutaneous injection but also to delay the release of mAbs. By leveraging the versatility of our platform, we formulated hyaluronic acid- and alginate-based injectable drug depots by simply mixing components that are generally regarded as safe (GRAS). We used trastuzumab for the polymer-antibody complexation. The hydrogel depots delayed mAb release up to at least 3 days in both in vitro and in vivo mice models, outperforming clinically approved Herceptin subcutaneous formulation composed of trastuzumab with recombinant human hyaluronidase (rHuPH20).

bioengineering↗

Dual carbon sequestration with photosynthetic living materials

Natural ecosystems offer efficient pathways for carbon sequestration, serving as a resilient approach to remove CO2 from the atmosphere with minimal environmental impact. However, the control of living systems outside of their native environments is often challenging. Here, we engineered a photosynthetic living material for dual CO2 sequestration by immobilizing photosynthetic microorganisms within a printable polymeric network. The carbon concentrating mechanism of the cyanobacteria enabled accumulation of CO2 within the cell, resulting in biomass production. Additionally, the metabolic production of OH- ions in the surrounding medium created an environment for the formation of insoluble carbonates via microbially-induced calcium carbonate precipitation (MICP). Digital design and fabrication of the living material ensured sufficient access to light and nutrient transport of the encapsulated cyanobacteria, which were essential for long-term viability (more than one year) as well as efficient photosynthesis and carbon sequestration. The photosynthetic living materials sequestered approximately 2.5 mg of CO2 per gram of hydrogel material over 30 days via dual carbon sequestration, with 2.2 {+/-} 0.9 mg stored as insoluble carbonates. Over an extended incubation period of 400 days, the living materials sequestered 26 {+/-} 7 mg of CO2 per gram of hydrogel material in the form of stable minerals. These findings highlight the potential of photosynthetic living materials for scalable carbon sequestration, carbon-neutral infrastructure, and green building materials. The simplicity of maintenance, coupled with its scalability nature, suggests broad applications of photosynthetic living materials as a complementary strategy to mitigate CO2 emissions.

bioengineering↗