@article{14742,
  abstract     = {Chromosomal rearrangements (CRs) have been known since almost the beginning of genetics.
While an important role for CRs in speciation has been suggested, evidence primarily stems
from theoretical and empirical studies focusing on the microevolutionary level (i.e., on taxon
pairs where speciation is often incomplete). Although the role of CRs in eukaryotic speciation at
a macroevolutionary level has been supported by associations between species diversity and
rates of evolution of CRs across phylogenies, these findings are limited to a restricted range of
CRs and taxa. Now that more broadly applicable and precise CR detection approaches have
become available, we address the challenges in filling some of the conceptual and empirical
gaps between micro- and macroevolutionary studies on the role of CRs in speciation. We
synthesize what is known about the macroevolutionary impact of CRs and suggest new research avenues to overcome the pitfalls of previous studies to gain a more comprehensive understanding of the evolutionary significance of CRs in speciation across the tree of life.},
  author       = {Lucek, Kay and Giménez, Mabel D. and Joron, Mathieu and Rafajlović, Marina and Searle, Jeremy B. and Walden, Nora and Westram, Anja M and Faria, Rui},
  issn         = {1943-0264},
  journal      = {Cold Spring Harbor Perspectives in Biology},
  keywords     = {General Biochemistry, Genetics and Molecular Biology},
  number       = {11},
  publisher    = {Cold Spring Harbor Laboratory},
  title        = {{The impact of chromosomal rearrangements in speciation: From micro- to macroevolution}},
  doi          = {10.1101/cshperspect.a041447},
  volume       = {15},
  year         = {2023},
}

@article{10016,
  abstract     = {Auxin has always been at the forefront of research in plant physiology and development. Since the earliest contemplations by Julius von Sachs and Charles Darwin, more than a century-long struggle has been waged to understand its function. This largely reflects the failures, successes, and inevitable progress in the entire field of plant signaling and development. Here I present 14 stations on our long and sometimes mystical journey to understand auxin. These highlights were selected to give a flavor of the field and to show the scope and limits of our current knowledge. A special focus is put on features that make auxin unique among phytohormones, such as its dynamic, directional transport network, which integrates external and internal signals, including self-organizing feedback. Accented are persistent mysteries and controversies. The unexpected discoveries related to rapid auxin responses and growth regulation recently disturbed our contentment regarding understanding of the auxin signaling mechanism. These new revelations, along with advances in technology, usher us into a new, exciting era in auxin research. },
  author       = {Friml, Jiří},
  issn         = {1943-0264},
  journal      = {Cold Spring Harbor Perspectives in Biology},
  number       = {5},
  publisher    = {Cold Spring Harbor Laboratory},
  title        = {{Fourteen stations of auxin}},
  doi          = {10.1101/cshperspect.a039859 },
  volume       = {14},
  year         = {2022},
}

@article{9212,
  abstract     = {Plant fitness is largely dependent on the root, the underground organ, which, besides its anchoring function, supplies the plant body with water and all nutrients necessary for growth and development. To exploit the soil effectively, roots must constantly integrate environmental signals and react through adjustment of growth and development. Important components of the root management strategy involve a rapid modulation of the root growth kinetics and growth direction, as well as an increase of the root system radius through formation of lateral roots (LRs). At the molecular level, such a fascinating growth and developmental flexibility of root organ requires regulatory networks that guarantee stability of the developmental program but also allows integration of various environmental inputs. The plant hormone auxin is one of the principal endogenous regulators of root system architecture by controlling primary root growth and formation of LR. In this review, we discuss recent progress in understanding molecular networks where auxin is one of the main players shaping the root system and acting as mediator between endogenous cues and environmental factors.},
  author       = {Cavallari, Nicola and Artner, Christina and Benková, Eva},
  issn         = {1943-0264},
  journal      = {Cold Spring Harbor Perspectives in Biology},
  number       = {7},
  publisher    = {Cold Spring Harbor Laboratory Press},
  title        = {{Auxin-regulated lateral root organogenesis}},
  doi          = {10.1101/cshperspect.a039941},
  volume       = {13},
  year         = {2021},
}

@article{11097,
  abstract     = {The nuclear envelope (NE) is a highly regulated membrane barrier that separates the nucleus from the cytoplasm in eukaryotic cells. It contains a large number of different proteins that have been implicated in chromatin organization and gene regulation. Although the nuclear membrane enables complex levels of gene expression, it also poses a challenge when it comes to cell division. To allow access of the mitotic spindle to chromatin, the nucleus of metazoans must completely disassemble during mitosis, generating the need to re-establish the nuclear compartment at the end of each cell division. Here, I summarize our current understanding of the dynamic remodeling of the NE during the cell cycle.},
  author       = {HETZER, Martin W},
  issn         = {1943-0264},
  journal      = {Cold Spring Harbor Perspectives in Biology},
  keywords     = {General Biochemistry, Genetics and Molecular Biology},
  number       = {3},
  pages        = {a000539--a000539},
  publisher    = {Cold Spring Harbor Laboratory},
  title        = {{The nuclear envelope}},
  doi          = {10.1101/cshperspect.a000539},
  volume       = {2},
  year         = {2010},
}

