@inbook{84,
  abstract     = {The advent of high-throughput technologies and the concurrent advances in information sciences have led to a data revolution in biology. This revolution is most significant in molecular biology, with an increase in the number and scale of the “omics” projects over the last decade. Genomics projects, for example, have produced impressive advances in our knowledge of the information concealed into genomes, from the many genes that encode for the proteins that are responsible for most if not all cellular functions, to the noncoding regions that are now known to provide regulatory functions. Proteomics initiatives help to decipher the role of post-translation modifications on the protein structures and provide maps of protein-protein interactions, while functional genomics is the field that attempts to make use of the data produced by these projects to understand protein functions. The biggest challenge today is to assimilate the wealth of information provided by these initiatives into a conceptual framework that will help us decipher life. For example, the current views of the relationship between protein structure and function remain fragmented. We know of their sequences, more and more about their structures, we have information on their biological activities, but we have difficulties connecting this dotted line into an informed whole. We lack the experimental and computational tools for directly studying protein structure, function, and dynamics at the molecular and supra-molecular levels. In this chapter, we review some of the current developments in building the computational tools that are needed, focusing on the role that geometry and topology play in these efforts. One of our goals is to raise the general awareness about the importance of geometric methods in elucidating the mysterious foundations of our very existence. Another goal is the broadening of what we consider a geometric algorithm. There is plenty of valuable no-man’s-land between combinatorial and numerical algorithms, and it seems opportune to explore this land with a computational-geometric frame of mind.},
  author       = {Edelsbrunner, Herbert and Koehl, Patrice},
  booktitle    = {Handbook of Discrete and Computational Geometry, Third Edition},
  editor       = {Toth, Csaba and O'Rourke, Joseph and Goodman, Jacob},
  pages        = {1709 -- 1735},
  publisher    = {Taylor & Francis},
  title        = {{Computational topology for structural molecular biology}},
  doi          = {10.1201/9781315119601},
  year         = {2017},
}

@article{840,
  abstract     = {Heavy holes confined in quantum dots are predicted to be promising candidates for the realization of spin qubits with long coherence times. Here we focus on such heavy-hole states confined in germanium hut wires. By tuning the growth density of the latter we can realize a T-like structure between two neighboring wires. Such a structure allows the realization of a charge sensor, which is electrostatically and tunnel coupled to a quantum dot, with charge-transfer signals as high as 0.3 e. By integrating the T-like structure into a radiofrequency reflectometry setup, single-shot measurements allowing the extraction of hole tunneling times are performed. The extracted tunneling times of less than 10 μs are attributed to the small effective mass of Ge heavy-hole states and pave the way toward projective spin readout measurements.},
  author       = {Vukusic, Lada and Kukucka, Josip and Watzinger, Hannes and Katsaros, Georgios},
  issn         = {15306984},
  journal      = {Nano Letters},
  number       = {9},
  pages        = {5706 -- 5710},
  publisher    = {American Chemical Society},
  title        = {{Fast hole tunneling times in germanium hut wires probed by single-shot reflectometry}},
  doi          = {10.1021/acs.nanolett.7b02627},
  volume       = {17},
  year         = {2017},
}

@article{2016,
  abstract     = {The Ising model is one of the simplest and most famous models of interacting systems. It was originally proposed to model ferromagnetic interactions in statistical physics and is now widely used to model spatial processes in many areas such as ecology, sociology, and genetics, usually without testing its goodness-of-fit. Here, we propose an exact goodness-of-fit test for the finite-lattice Ising model. The theory of Markov bases has been developed in algebraic statistics for exact goodness-of-fit testing using a Monte Carlo approach. However, this beautiful theory has fallen short of its promise for applications, because finding a Markov basis is usually computationally intractable. We develop a Monte Carlo method for exact goodness-of-fit testing for the Ising model which avoids computing a Markov basis and also leads to a better connectivity of the Markov chain and hence to a faster convergence. We show how this method can be applied to analyze the spatial organization of receptors on the cell membrane.},
  author       = {Martin Del Campo Sanchez, Abraham and Cepeda Humerez, Sarah A and Uhler, Caroline},
  issn         = {03036898},
  journal      = {Scandinavian Journal of Statistics},
  number       = {2},
  pages        = {285 -- 306},
  publisher    = {Wiley-Blackwell},
  title        = {{Exact goodness-of-fit testing for the Ising model}},
  doi          = {10.1111/sjos.12251},
  volume       = {44},
  year         = {2017},
}

@phdthesis{202,
  abstract     = {Restriction-modification (RM) represents the simplest and possibly the most widespread mechanism of self/non-self discrimination in nature. In order to provide bacteria with immunity against bacteriophages and other parasitic genetic elements, RM systems rely on a balance between two enzymes: the restriction enzyme, which cleaves non-self DNA at specific restriction sites, and the modification enzyme, which tags the host’s DNA as self and thus protects it from cleavage. In this thesis, I use population and single-cell level experiments in combination with mathematical modeling to study different aspects of the interplay between RM systems, bacteria and bacteriophages. First, I analyze how mutations in phage restriction sites affect the probability of phage escape – an inherently stochastic process, during which phages accidently get modified instead of restricted. Next, I use single-cell experiments to show that RM systems can, with a low probability, attack the genome of their bacterial host and that this primitive form of autoimmunity leads to a tradeoff between the evolutionary cost and benefit of RM systems. Finally, I investigate the nature of interactions between bacteria, RM systems and temperate bacteriophages to find that, as a consequence of phage escape and its impact on population dynamics, RM systems can promote acquisition of symbiotic bacteriophages, rather than limit it. The results presented here uncover new fundamental biological properties of RM systems and highlight their importance in the ecology and evolution of bacteria, bacteriophages and their interactions.},
  author       = {Pleska, Maros},
  issn         = {2663-337X},
  pages        = {126},
  publisher    = {Institute of Science and Technology Austria},
  title        = {{Biology of restriction-modification systems at the single-cell and population level}},
  doi          = {10.15479/AT:ISTA:th_916},
  year         = {2017},
}

@article{662,
  abstract     = {We report a direct-numerical-simulation study of the Taylor-Couette flow in the quasi-Keplerian regime at shear Reynolds numbers up to (105). Quasi-Keplerian rotating flow has been investigated for decades as a simplified model system to study the origin of turbulence in accretion disks that is not fully understood. The flow in this study is axially periodic and thus the experimental end-wall effects on the stability of the flow are avoided. Using optimal linear perturbations as initial conditions, our simulations find no sustained turbulence: the strong initial perturbations distort the velocity profile and trigger turbulence that eventually decays.},
  author       = {Shi, Liang and Hof, Björn and Rampp, Markus and Avila, Marc},
  issn         = {10706631},
  journal      = {Physics of Fluids},
  number       = {4},
  publisher    = {American Institute of Physics},
  title        = {{Hydrodynamic turbulence in quasi Keplerian rotating flows}},
  doi          = {10.1063/1.4981525},
  volume       = {29},
  year         = {2017},
}

@inproceedings{663,
  abstract     = {In this paper, we propose an approach to automatically compute invariant clusters for nonlinear semialgebraic hybrid systems. An invariant cluster for an ordinary differential equation (ODE) is a multivariate polynomial invariant g(u→, x→) = 0, parametric in u→, which can yield an infinite number of concrete invariants by assigning different values to u→ so that every trajectory of the system can be overapproximated precisely by the intersection of a group of concrete invariants. For semialgebraic systems, which involve ODEs with multivariate polynomial right-hand sides, given a template multivariate polynomial g(u→, x→), an invariant cluster can be obtained by first computing the remainder of the Lie derivative of g(u→, x→) divided by g(u→, x→) and then solving the system of polynomial equations obtained from the coefficients of the remainder. Based on invariant clusters and sum-of-squares (SOS) programming, we present a new method for the safety verification of hybrid systems. Experiments on nonlinear benchmark systems from biology and control theory show that our approach is efficient. },
  author       = {Kong, Hui and Bogomolov, Sergiy and Schilling, Christian and Jiang, Yu and Henzinger, Thomas A},
  booktitle    = {Proceedings of the 20th International Conference on Hybrid Systems},
  isbn         = {978-145034590-3},
  location     = {Pittsburgh, PA, United States},
  pages        = {163 -- 172},
  publisher    = {ACM},
  title        = {{Safety verification of nonlinear hybrid systems based on invariant clusters}},
  doi          = {10.1145/3049797.3049814},
  year         = {2017},
}

@article{664,
  abstract     = {Immune cells communicate using cytokine signals, but the quantitative rules of this communication aren't clear. In this issue of Immunity, Oyler-Yaniv et al. (2017) suggest that the distribution of a cytokine within a lymphatic organ is primarily governed by the local density of cells consuming it.},
  author       = {Assen, Frank P and Sixt, Michael K},
  issn         = {10747613},
  journal      = {Immunity},
  number       = {4},
  pages        = {519 -- 520},
  publisher    = {Cell Press},
  title        = {{The dynamic cytokine niche}},
  doi          = {10.1016/j.immuni.2017.04.006},
  volume       = {46},
  year         = {2017},
}

@article{665,
  abstract     = {The molecular mechanisms underlying phenotypic variation in isogenic bacterial populations remain poorly understood.We report that AcrAB-TolC, the main multidrug efflux pump of Escherichia coli, exhibits a strong partitioning bias for old cell poles by a segregation mechanism that is mediated by ternary AcrAB-TolC complex formation. Mother cells inheriting old poles are phenotypically distinct and display increased drug efflux activity relative to daughters. Consequently, we find systematic and long-lived growth differences between mother and daughter cells in the presence of subinhibitory drug concentrations. A simple model for biased partitioning predicts a population structure of long-lived and highly heterogeneous phenotypes. This straightforward mechanism of generating sustained growth rate differences at subinhibitory antibiotic concentrations has implications for understanding the emergence of multidrug resistance in bacteria.},
  author       = {Bergmiller, Tobias and Andersson, Anna M and Tomasek, Kathrin and Balleza, Enrique and Kiviet, Daniel and Hauschild, Robert and Tkacik, Gasper and Guet, Calin C},
  issn         = {00368075},
  journal      = {Science},
  number       = {6335},
  pages        = {311 -- 315},
  publisher    = {American Association for the Advancement of Science},
  title        = {{Biased partitioning of the multidrug efflux pump AcrAB TolC underlies long lived phenotypic heterogeneity}},
  doi          = {10.1126/science.aaf4762},
  volume       = {356},
  year         = {2017},
}

@article{666,
  abstract     = {Antibiotics elicit drastic changes in microbial gene expression, including the induction of stress response genes. While certain stress responses are known to “cross-protect” bacteria from other stressors, it is unclear whether cellular responses to antibiotics have a similar protective role. By measuring the genome-wide transcriptional response dynamics of Escherichia coli to four antibiotics, we found that trimethoprim induces a rapid acid stress response that protects bacteria from subsequent exposure to acid. Combining microfluidics with time-lapse imaging to monitor survival and acid stress response in single cells revealed that the noisy expression of the acid resistance operon gadBC correlates with single-cell survival. Cells with higher gadBC expression following trimethoprim maintain higher intracellular pH and survive the acid stress longer. The seemingly random single-cell survival under acid stress can therefore be predicted from gadBC expression and rationalized in terms of GadB/C molecular function. Overall, we provide a roadmap for identifying the molecular mechanisms of single-cell cross-protection between antibiotics and other stressors.},
  author       = {Mitosch, Karin and Rieckh, Georg and Bollenbach, Tobias},
  issn         = {24054712},
  journal      = {Cell Systems},
  number       = {4},
  pages        = {393 -- 403},
  publisher    = {Cell Press},
  title        = {{Noisy response to antibiotic stress predicts subsequent single cell survival in an acidic environment}},
  doi          = {10.1016/j.cels.2017.03.001},
  volume       = {4},
  year         = {2017},
}

@article{667,
  abstract     = {Perinatal exposure to penicillin may result in longlasting gut and behavioral changes.},
  author       = {Novarino, Gaia},
  issn         = {19466234},
  journal      = {Science Translational Medicine},
  number       = {387},
  publisher    = {American Association for the Advancement of Science},
  title        = {{The antisocial side of antibiotics}},
  doi          = {10.1126/scitranslmed.aan2786},
  volume       = {9},
  year         = {2017},
}

@article{668,
  abstract     = {Macrophage filopodia, finger-like membrane protrusions, were first implicated in phagocytosis more than 100 years ago, but little is still known about the involvement of these actin-dependent structures in particle clearance. Using spinning disk confocal microscopy to image filopodial dynamics in mouse resident Lifeact-EGFP macrophages, we show that filopodia, or filopodia-like structures, support pathogen clearance by multiple means. Filopodia supported the phagocytic uptake of bacterial (Escherichia coli) particles by (i) capturing along the filopodial shaft and surfing toward the cell body, the most common mode of capture; (ii) capturing via the tip followed by retraction; (iii) combinations of surfing and retraction; or (iv) sweeping actions. In addition, filopodia supported the uptake of zymosan (Saccharomyces cerevisiae) particles by (i) providing fixation, (ii) capturing at the tip and filopodia-guided actin anterograde flow with phagocytic cup formation, and (iii) the rapid growth of new protrusions. To explore the role of filopodia-inducing Cdc42, we generated myeloid-restricted Cdc42 knock-out mice. Cdc42-deficient macrophages exhibited rapid phagocytic cup kinetics, but reduced particle clearance, which could be explained by the marked rounded-up morphology of these cells. Macrophages lacking Myo10, thought to act downstream of Cdc42, had normal morphology, motility, and phagocytic cup formation, but displayed markedly reduced filopodia formation. In conclusion, live-cell imaging revealed multiple mechanisms involving macrophage filopodia in particle capture and engulfment. Cdc42 is not critical for filopodia or phagocytic cup formation, but plays a key role in driving macrophage lamellipodial spreading.},
  author       = {Horsthemke, Markus and Bachg, Anne and Groll, Katharina and Moyzio, Sven and Müther, Barbara and Hemkemeyer, Sandra and Wedlich Söldner, Roland and Sixt, Michael K and Tacke, Sebastian and Bähler, Martin and Hanley, Peter},
  issn         = {00219258},
  journal      = {Journal of Biological Chemistry},
  number       = {17},
  pages        = {7258 -- 7273},
  publisher    = {American Society for Biochemistry and Molecular Biology},
  title        = {{Multiple roles of filopodial dynamics in particle capture and phagocytosis and phenotypes of Cdc42 and Myo10 deletion}},
  doi          = {10.1074/jbc.M116.766923},
  volume       = {292},
  year         = {2017},
}

@article{669,
  abstract     = {The exocyst, a eukaryotic tethering complex, coregulates targeted exocytosis as an effector of small GTPases in polarized cell growth. In land plants, several exocyst subunits are encoded by double or triple paralogs, culminating in tens of EXO70 paralogs. Out of 23 Arabidopsis thaliana EXO70 isoforms, we analyzed seven isoforms expressed in pollen. Genetic and microscopic analyses of single mutants in EXO70A2, EXO70C1, EXO70C2, EXO70F1, EXO70H3, EXO70H5, and EXO70H6 genes revealed that only a loss-of-function EXO70C2 allele resulted in a significant male-specific transmission defect (segregation 40%:51%:9%) due to aberrant pollen tube growth. Mutant pollen tubes grown in vitro exhibited an enhanced growth rate and a decreased thickness of the tip cell wall, causing tip bursts. However, exo70C2 pollen tubes could frequently recover and restart their speedy elongation, resulting in a repetitive stop-and-go growth dynamics. A pollenspecific depletion of the closest paralog, EXO70C1, using artificial microRNA in the exo70C2 mutant background, resulted in a complete pollen-specific transmission defect, suggesting redundant functions of EXO70C1 and EXO70C2. Both EXO70C1 and EXO70C2, GFP tagged and expressed under the control of their native promoters, localized in the cytoplasm of pollen grains, pollen tubes, and also root trichoblast cells. The expression of EXO70C2-GFP complemented the aberrant growth of exo70C2 pollen tubes. The absent EXO70C2 interactions with core exocyst subunits in the yeast two-hybrid assay, cytoplasmic localization, and genetic effect suggest an unconventional EXO70 function possibly as a regulator of exocytosis outside the exocyst complex. In conclusion, EXO70C2 is a novel factor contributing to the regulation of optimal tip growth of Arabidopsis pollen tubes. },
  author       = {Synek, Lukáš and Vukašinović, Nemanja and Kulich, Ivan and Hála, Michal and Aldorfová, Klára and Fendrych, Matyas and Žárský, Viktor},
  issn         = {00320889},
  journal      = {Plant Physiology},
  number       = {1},
  pages        = {223 -- 240},
  publisher    = {American Society of Plant Biologists},
  title        = {{EXO70C2 is a key regulatory factor for optimal tip growth of pollen}},
  doi          = {10.1104/pp.16.01282},
  volume       = {174},
  year         = {2017},
}

@article{670,
  abstract     = {We propose an efficient method to model paper tearing in the context of interactive modeling. The method uses geometrical information to automatically detect potential starting points of tears. We further introduce a new hybrid geometrical and physical-based method to compute the trajectory of tears while procedurally synthesizing high resolution details of the tearing path using a texture based approach. The results obtained are compared with real paper and with previous studies on the expected geometric paths of paper that tears.},
  author       = {Schreck, Camille and Rohmer, Damien and Hahmann, Stefanie},
  issn         = {01677055},
  journal      = {Computer Graphics Forum},
  number       = {2},
  pages        = {95 -- 106},
  publisher    = {Wiley},
  title        = {{Interactive paper tearing}},
  doi          = {10.1111/cgf.13110},
  volume       = {36},
  year         = {2017},
}

@article{671,
  abstract     = {Humans routinely use conditionally cooperative strategies when interacting in repeated social dilemmas. They are more likely to cooperate if others cooperated before, and are ready to retaliate if others defected. To capture the emergence of reciprocity, most previous models consider subjects who can only choose from a restricted set of representative strategies, or who react to the outcome of the very last round only. As players memorize more rounds, the dimension of the strategy space increases exponentially. This increasing computational complexity renders simulations for individuals with higher cognitive abilities infeasible, especially if multiplayer interactions are taken into account. Here, we take an axiomatic approach instead. We propose several properties that a robust cooperative strategy for a repeated multiplayer dilemma should have. These properties naturally lead to a unique class of cooperative strategies, which contains the classical Win-Stay Lose-Shift rule as a special case. A comprehensive numerical analysis for the prisoner's dilemma and for the public goods game suggests that strategies of this class readily evolve across various memory-n spaces. Our results reveal that successful strategies depend not only on how cooperative others were in the past but also on the respective context of cooperation.},
  author       = {Hilbe, Christian and Martinez, Vaquero and Chatterjee, Krishnendu and Nowak, Martin},
  issn         = {00278424},
  journal      = {PNAS},
  number       = {18},
  pages        = {4715 -- 4720},
  publisher    = {National Academy of Sciences},
  title        = {{Memory-n strategies of direct reciprocity}},
  doi          = {10.1073/pnas.1621239114},
  volume       = {114},
  year         = {2017},
}

@article{672,
  abstract     = {Trafficking cells frequently transmigrate through epithelial and endothelial monolayers. How monolayers cooperate with the penetrating cells to support their transit is poorly understood. We studied dendritic cell (DC) entry into lymphatic capillaries as a model system for transendothelial migration. We find that the chemokine CCL21, which is the decisive guidance cue for intravasation, mainly localizes in the trans-Golgi network and intracellular vesicles of lymphatic endothelial cells. Upon DC transmigration, these Golgi deposits disperse and CCL21 becomes extracellularly enriched at the sites of endothelial cell-cell junctions. When we reconstitute the transmigration process in vitro, we find that secretion of CCL21-positive vesicles is triggered by a DC contact-induced calcium signal, and selective calcium chelation in lymphatic endothelium attenuates transmigration. Altogether, our data demonstrate a chemokine-mediated feedback between DCs and lymphatic endothelium, which facilitates transendothelial migration.},
  author       = {Vaahtomeri, Kari and Brown, Markus and Hauschild, Robert and De Vries, Ingrid and Leithner, Alexander F and Mehling, Matthias and Kaufmann, Walter and Sixt, Michael K},
  issn         = {22111247},
  journal      = {Cell Reports},
  number       = {5},
  pages        = {902 -- 909},
  publisher    = {Cell Press},
  title        = {{Locally triggered release of the chemokine CCL21 promotes dendritic cell transmigration across lymphatic endothelia}},
  doi          = {10.1016/j.celrep.2017.04.027},
  volume       = {19},
  year         = {2017},
}

@article{673,
  abstract     = {We present a numerical study of wavy supercritical cylindrical Couette flow between counter-rotating cylinders in which the wavy pattern propagates either prograde with the inner cylinder or retrograde opposite the rotation of the inner cylinder. The wave propagation reversals from prograde to retrograde and vice versa occur at distinct values of the inner cylinder Reynolds number when the associated frequency of the wavy instability vanishes. The reversal occurs for both twofold and threefold symmetric wavy vortices. Moreover, the wave propagation reversal only occurs for sufficiently strong counter-rotation. The flow pattern reversal appears to be intrinsic in the system as either periodic boundary conditions or fixed end wall boundary conditions for different system sizes always result in the wave propagation reversal. We present a detailed bifurcation sequence and parameter space diagram with respect to retrograde behavior of wavy flows. The retrograde propagation of the instability occurs when the inner Reynolds number is about two times the outer Reynolds number. The mechanism for the retrograde propagation is associated with the inviscidly unstable region near the inner cylinder and the direction of the global average azimuthal velocity. Flow dynamics, spatio-temporal behavior, global mean angular velocity, and torque of the flow with the wavy pattern are explored.},
  author       = {Altmeyer, Sebastian and Lueptow, Richard},
  issn         = {2470-0045},
  journal      = {Physical Review E},
  number       = {5},
  publisher    = {American Physical Society},
  title        = {{Wave propagation reversal for wavy vortices in wide gap counter rotating cylindrical Couette flow}},
  doi          = {10.1103/PhysRevE.95.053103},
  volume       = {95},
  year         = {2017},
}

@article{674,
  abstract     = {Navigation of cells along gradients of guidance cues is a determining step in many developmental and immunological processes. Gradients can either be soluble or immobilized to tissues as demonstrated for the haptotactic migration of dendritic cells (DCs) toward higher concentrations of immobilized chemokine CCL21. To elucidate how gradient characteristics govern cellular response patterns, we here introduce an in vitro system allowing to track migratory responses of DCs to precisely controlled immobilized gradients of CCL21. We find that haptotactic sensing depends on the absolute CCL21 concentration and local steepness of the gradient, consistent with a scenario where DC directionality is governed by the signal-to-noise ratio of CCL21 binding to the receptor CCR7. We find that the conditions for optimal DC guidance are perfectly provided by the CCL21 gradients we measure in vivo. Furthermore, we find that CCR7 signal termination by the G-protein-coupled receptor kinase 6 (GRK6) is crucial for haptotactic but dispensable for chemotactic CCL21 gradient sensing in vitro and confirm those observations in vivo. These findings suggest that stable, tissue-bound CCL21 gradients as sustainable “roads” ensure optimal guidance in vivo.},
  author       = {Schwarz, Jan and Bierbaum, Veronika and Vaahtomeri, Kari and Hauschild, Robert and Brown, Markus and De Vries, Ingrid and Leithner, Alexander F and Reversat, Anne and Merrin, Jack and Tarrant, Teresa and Bollenbach, Tobias and Sixt, Michael K},
  issn         = {09609822},
  journal      = {Current Biology},
  number       = {9},
  pages        = {1314 -- 1325},
  publisher    = {Cell Press},
  title        = {{Dendritic cells interpret haptotactic chemokine gradients in a manner governed by signal to noise ratio and dependent on GRK6}},
  doi          = {10.1016/j.cub.2017.04.004},
  volume       = {27},
  year         = {2017},
}

@article{676,
  abstract     = {The segregation of different cell types into distinct tissues is a fundamental process in metazoan development. Differences in cell adhesion and cortex tension are commonly thought to drive cell sorting by regulating tissue surface tension (TST). However, the role that differential TST plays in cell segregation within the developing embryo is as yet unclear. Here, we have analyzed the role of differential TST for germ layer progenitor cell segregation during zebrafish gastrulation. Contrary to previous observations that differential TST drives germ layer progenitor cell segregation in vitro, we show that germ layers display indistinguishable TST within the gastrulating embryo, arguing against differential TST driving germ layer progenitor cell segregation in vivo. We further show that the osmolarity of the interstitial fluid (IF) is an important factor that influences germ layer TST in vivo, and that lower osmolarity of the IF compared with standard cell culture medium can explain why germ layers display differential TST in culture but not in vivo. Finally, we show that directed migration of mesendoderm progenitors is required for germ layer progenitor cell segregation and germ layer formation.},
  author       = {Krens, Gabriel and Veldhuis, Jim and Barone, Vanessa and Capek, Daniel and Maître, Jean-Léon and Brodland, Wayne and Heisenberg, Carl-Philipp J},
  issn         = {09501991},
  journal      = {Development},
  number       = {10},
  pages        = {1798 -- 1806},
  publisher    = {Company of Biologists},
  title        = {{Interstitial fluid osmolarity modulates the action of differential tissue surface tension in progenitor cell segregation during gastrulation}},
  doi          = {10.1242/dev.144964},
  volume       = {144},
  year         = {2017},
}

@article{677,
  abstract     = {The INO80 complex (INO80-C) is an evolutionarily conserved nucleosome remodeler that acts in transcription, replication, and genome stability. It is required for resistance against genotoxic agents and is involved in the repair of DNA double-strand breaks (DSBs) by homologous recombination (HR). However, the causes of the HR defect in INO80-C mutant cells are controversial. Here, we unite previous findings using a system to study HR with high spatial resolution in budding yeast. We find that INO80-C has at least two distinct functions during HR—DNA end resection and presynaptic filament formation. Importantly, the second function is linked to the histone variant H2A.Z. In the absence of H2A.Z, presynaptic filament formation and HR are restored in INO80-C-deficient mutants, suggesting that presynaptic filament formation is the crucial INO80-C function during HR.},
  author       = {Lademann, Claudio and Renkawitz, Jörg and Pfander, Boris and Jentsch, Stefan},
  issn         = {22111247},
  journal      = {Cell Reports},
  number       = {7},
  pages        = {1294 -- 1303},
  publisher    = {Cell Press},
  title        = {{The INO80 complex removes H2A.Z to promote presynaptic filament formation during homologous recombination}},
  doi          = {10.1016/j.celrep.2017.04.051},
  volume       = {19},
  year         = {2017},
}

@article{678,
  abstract     = {The seminal observation that mechanical signals can elicit changes in biochemical signalling within cells, a process commonly termed mechanosensation and mechanotransduction, has revolutionized our understanding of the role of cell mechanics in various fundamental biological processes, such as cell motility, adhesion, proliferation and differentiation. In this Review, we will discuss how the interplay and feedback between mechanical and biochemical signals control tissue morphogenesis and cell fate specification in embryonic development.},
  author       = {Petridou, Nicoletta and Spiro, Zoltan P and Heisenberg, Carl-Philipp J},
  issn         = {14657392},
  journal      = {Nature Cell Biology},
  number       = {6},
  pages        = {581 -- 588},
  publisher    = {Nature Publishing Group},
  title        = {{Multiscale force sensing in development}},
  doi          = {10.1038/ncb3524},
  volume       = {19},
  year         = {2017},
}

