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Biology subjects

Schaumann, D.

Publications and source records attributed to Schaumann, D..

2 recordsLinked to original sources

Modular engineering of an extracellular contractile injection system for protein delivery to mammalian and bacterial cells

Extracellular contractile injection systems (eCIS) are autonomous, proteinaceous macromolecular machines, capable of injecting diverse payloads into target cells and thus, promising for biomedical applications. Central mechanistic aspects such as cargo loading are poorly understood and only a few examples of functional modifications have been reported. Here, we present "programmable CIS (PROCIS)," a versatile delivery platform based on engineered eCIS from Algoriphagus machipongonensis. Through structure-guided engineering of the tail fiber, we redirect PROCIS toward mammalian or bacterial targets. Furthermore, we identify a conserved AAA+ family ATPase as a required factor for cargo loading into the inner tube lumen. We characterize an N-terminal cargo loading sequence, which is critical for the loading of cargo and can be repurposed for directing non-native cargos to the tube lumen. Additionally, we demonstrate that a tape measure protein acts as a molecular ruler, allowing for precise tuning of particle length that correlates with cargo capacity. Finally, we integrate our insights and demonstrate the functional delivery of bioactive proteins such as Cre recombinase and beta-lactamase to E. coli and HeLa cells, respectively. Our results provide a framework for understanding the eCIS mechanism and establish PROCIS as a programmable toolkit for the targeted intracellular delivery of large biomolecules.

molecular biology↗

Molecular Mechanism of Condensin II auto-repression by NCAPD3 and activation by M18BP1

Human condensin II is a constitutively nuclear molecular motor that initiates chromosome organization in early mitosis. How condensin II is activated specifically in mitosis remains unknown. Here, we describe the molecular mechanism underlying condensin II auto-repression and activation. By determining multiple structural states of condensin II, we discovered that an autoinhibitory tail within the NCAPD3 subunit (NCAPD3Tail) holds the complex in a conformation that is incompatible with DNA capture. Deletion of NCAPD3Tail spontaneously activates condensin II in cells, illuminating its autoinhibitory role in vivo. We further show this translates to increased loop DNA formation by condensin II in vitro. Direct competition for the NCAPD3Tail binding site on condensin II enables the putative activator protein M18BP1 to liberate a key DNA-binding element in the NCAPH2 N-terminus, enabling DNA capture. Unexpectedly, M18BP1 not only relieves autoinhibition but also directly contributes to DNA organization by forming a positively charged loop that enhances DNA-anchoring by condensin II. Together, these findings reveal a bipartite activation mechanism wherein M18BP1 relieves autorepression, and renders condensin II biochemically competent to form stable DNA loops, ensuring highly stringent regulation of mitotic chromosome formation.

biochemistry↗