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Axillary Meristems. Axillary meristems first appear as a bulge of cells that protrude above the bases of the youngest leaves plastochrons 1521 when viewed in transverse sections of the shoot apex Fig. This review focuses on the formation and activity of axillary meristems. Its long internodes separating nodes in. The claim that axillary meristems because they have been demonstrated in a diversity of axis types of other Araucariaceae Agathis and Araucaria must be universally present in all leaf axils in Wollemia is not an unreasonable assumption but it is still an assumption in need of further testing especially in view of the distinctive.

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This review focuses on the formation and activity of axillary meristems. The beginning growth of the leaf at the node results in a bump or an axillary bud at the node. In the axils of older leaves axillary meristems are found in more advanced stages of development and have already. Axillary buds contain. We find parallels between the development of axillary meristems and the development of floral meristems. Axillary meristems first appear as a bulge of cells that protrude above the bases of the youngest leaves plastochrons 1521 when viewed in transverse sections of the shoot apex Fig.

Axillary meristems reach their potential to form a mature branch or an inflorescence-bearing fruit.

Axillary buds contain. These opposite fates dictated by both genetic and environmental factors determine interspecific differences in the. The control of axillary meristem fate in the. As such they make a large contribution to the plastic developmental potential of plants allowing them to alter their architecture to suit the prevailing environment conditions. Its long internodes separating nodes in. The shoot of a plant also includes its leaves which grow from the sides of the apical meristem.

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These opposite fates dictated by both genetic and environmental factors determine interspecific differences in the. Four stages of axillary meristem development and previously undefined substages of floral meristem development are described. Plant axillary meristems are composed of highly organized self-renewing stem cells that produce indeterminate branches or terminate in differentiated structures such as the flowers. Leaf axils excised from the apex to the base of 2-m-high W. Research into axillary meristem initiation has identified transcription factors and phytohormones as key regulators.

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The claim that axillary meristems because they have been demonstrated in a diversity of axis types of other Araucariaceae Agathis and Araucaria must be universally present in all leaf axils in Wollemia is not an unreasonable assumption but it is still an assumption in need of further testing especially in view of the distinctive. 1c or as a small raised dome of cells 70135 μm wide when viewed by SEM Fig. As such they make a large contribution to the plastic developmental potential of plants allowing them to alter their architecture to suit the prevailing environment conditions. This review focuses on the formation and activity of axillary meristems. Here we identified and characterized loss of axillary meristems lam an EMS-induced mutant of the diploid woodland strawberry Fragaria vesca that lacked stamens in flowers and had reduced numbers of branch crowns and runners.

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The suitability of pea for investigating long-distance signaling makes it a valuable tool for eluci-dating the coordinate regulation of axillary meristem development. This review focuses on the formation and activity of axillary meristems. As these are unusual architectural features for the Araucariaceae an investigation was made of the axillary meristems of the main stem and their role in the production of epicormic and possibly coppice shoots. If they are also vegetative meristems they will have a structure and developmental potential similar to that of the apical meristem. The control of axillary meristem fate in the.

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Axillary meristems reach their potential to form a mature branch or an inflorescence-bearing fruit. Leaf axils excised from the apex to the base of 2-m-high W. These opposite fates dictated by both genetic and environmental factors determine interspecific differences in the. Axillary meristems reach their potential to form a mature branch or an inflorescence-bearing fruit. The suitability of pea for investigating long-distance signaling makes it a valuable tool for eluci-dating the coordinate regulation of axillary meristem development.

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This axillary meristem is well-formed and will begin producing its own leaf primordia soon. Plant axillary meristems are composed of highly organized self-renewing stem cells that produce indeterminate branches or terminate in differentiated structures such as the flowers. 1c or as a small raised dome of cells 70135 μm wide when viewed by SEM Fig. Here we identified and characterized loss of axillary meristems lam an EMS-induced mutant of the diploid woodland strawberry Fragaria vesca that lacked stamens in flowers and had reduced numbers of branch crowns and runners. This axillary meristem is well-formed and will begin producing its own leaf primordia soon.

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As such they make a large contribution to the plastic developmental potential of plants allowing them to alter their architecture to suit the prevailing environment conditions. The beginning growth of the leaf at the node results in a bump or an axillary bud at the node. Axillary meristems first appear as a bulge of cells that protrude above the bases of the youngest leaves plastochrons 1521 when viewed in transverse sections of the shoot apex Fig. This axillary meristem is well-formed and will begin producing its own leaf primordia soon. As these are unusual architectural features for the Araucariaceae an investigation was made of the axillary meristems of the main stem and their role in the production of epicormic and possibly coppice shoots.

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The claim that axillary meristems because they have been demonstrated in a diversity of axis types of other Araucariaceae Agathis and Araucaria must be universally present in all leaf axils in Wollemia is not an unreasonable assumption but it is still an assumption in need of further testing especially in view of the distinctive. The suitability of pea for investigating long-distance signaling makes it a valuable tool for eluci-dating the coordinate regulation of axillary meristem development. The beginning growth of the leaf at the node results in a bump or an axillary bud at the node. The control of axillary meristem fate in the. Axillary buds contain.

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These opposite fates dictated by both genetic and environmental factors determine interspecific differences in the. Its long internodes separating nodes in. Determination of the axillary meristem as either vegetative or floral is a key step in regulating plant architecture and involves interactions among genotype environmental cues and endogenous phytohormone-like signals. The reduced branch crown and runner phenotypes were caused by a failure of axillary meristem initiation. As these are unusual architectural features for the Araucariaceae an investigation was made of the axillary meristems of the main stem and their role in the production of epicormic and possibly coppice shoots.

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As these are unusual architectural features for the Araucariaceae an investigation was made of the axillary meristems of the main stem and their role in the production of epicormic and possibly coppice shoots. Research into axillary meristem initiation has identified transcription factors and phytohormones as key regulators. In seed plants branching is achieved by axillary meristems which are established in the axil of each leaf base and develop into lateral branches. The suitability of pea for investigating long-distance signaling makes it a valuable tool for eluci-dating the coordinate regulation of axillary meristem development. Determination of the axillary meristem as either vegetative or floral is a key step in regulating plant architecture and involves interactions among genotype environmental cues and endogenous phytohormone-like signals.

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The suitability of pea for investigating long-distance signaling makes it a valuable tool for eluci-dating the coordinate regulation of axillary meristem development. If the terminal bud is in close proximity to the axillary bud the axillary buds will remain dormant. Axillary buds contain. The control of axillary meristem fate in the. Research into axillary meristem initiation has identified transcription factors and phytohormones as key regulators.

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This review focuses on the formation and activity of axillary meristems. As such they make a large contribution to the plastic developmental potential of plants allowing them to alter their architecture to suit the prevailing environment conditions. The beginning growth of the leaf at the node results in a bump or an axillary bud at the node. We find parallels between the development of axillary meristems and the development of floral meristems. If the terminal bud is in close proximity to the axillary bud the axillary buds will remain dormant.

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Plant axillary meristems are composed of highly organized self-renewing stem cells that produce indeterminate branches or terminate in differentiated structures such as the flowers. The reduced branch crown and runner phenotypes were caused by a failure of axillary meristem initiation. If they are also vegetative meristems they will have a structure and developmental potential similar to that of the apical meristem. Plant axillary meristems are composed of highly organized self-renewing stem cells that produce indeterminate branches or terminate in differentiated structures such as the flowers. The control of axillary meristem fate in the.

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Axillary meristems reach their potential to form a mature branch or an inflorescence-bearing fruit. Axillary meristems reach their potential to form a mature branch or an inflorescence-bearing fruit. The suitability of pea for investigating long-distance signaling makes it a valuable tool for eluci-dating the coordinate regulation of axillary meristem development. Leaf axils excised from the apex to the base of 2-m-high W. Determination of the axillary meristem as either vegetative or floral is a key step in regulating plant architecture and involves interactions among genotype environmental cues and endogenous phytohormone-like signals.

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Axillary meristems allow the production of secondary growth axes in the shoot systems of plants. Axillary buds are secondary meristems. As these are unusual architectural features for the Araucariaceae an investigation was made of the axillary meristems of the main stem and their role in the production of epicormic and possibly coppice shoots. If they are also vegetative meristems they will have a structure and developmental potential similar to that of the apical meristem. Nobilis plants seedling origin ex situ grown were examined anatomically.

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These opposite fates dictated by both genetic and environmental factors determine interspecific differences in the. 1c or as a small raised dome of cells 70135 μm wide when viewed by SEM Fig. As such they make a large contribution to the plastic developmental potential of plants allowing them to alter their architecture to suit the prevailing environment conditions. Post-embryonic development and longevity of flowering plants are for a large part determined by the activity and maturation state of stem cell. Axillary meristems allow the production of secondary growth axes in the shoot systems of plants.

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The reduced branch crown and runner phenotypes were caused by a failure of axillary meristem initiation. If they are also vegetative meristems they will have a structure and developmental potential similar to that of the apical meristem. Its long internodes separating nodes in. Axillary meristems first appear as a bulge of cells that protrude above the bases of the youngest leaves plastochrons 1521 when viewed in transverse sections of the shoot apex Fig. Axillary meristems allow the production of secondary growth axes in the shoot systems of plants.

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The control of axillary meristem fate in the. Research into axillary meristem initiation has identified transcription factors and phytohormones as key regulators. In seed plants branching is achieved by axillary meristems which are established in the axil of each leaf base and develop into lateral branches. Axillary meristems first appear as a bulge of cells that protrude above the bases of the youngest leaves plastochrons 1521 when viewed in transverse sections of the shoot apex Fig. If the terminal bud is in close proximity to the axillary bud the axillary buds will remain dormant.

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These opposite fates dictated by both genetic and environmental factors determine interspecific differences in the. As these are unusual architectural features for the Araucariaceae an investigation was made of the axillary meristems of the main stem and their role in the production of epicormic and possibly coppice shoots. If the terminal bud is in close proximity to the axillary bud the axillary buds will remain dormant. The suitability of pea for investigating long-distance signaling makes it a valuable tool for eluci-dating the coordinate regulation of axillary meristem development. We find parallels between the development of axillary meristems and the development of floral meristems.

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