-ˋˏ ༻ News ༺ ˎˊ-
⟁
Magnolia‘s Design
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Dorsal Horn
The dorsal horn contains various types of neurons, including primary afferent fibers
projection neurons:
a type of neuron in the central nervous system (CNS) that transmit information to distant regions of the brain or spinal cord
They have long axons
the function of axons is to carry electrical impulses that are the means of communication within the brain and between the brain and the rest of the body
that extend from their cell bodies to distant targets
Their axons project to areas outside the structure they originate from, unlike interneurons which project locally within the same structure
Spinoparabrachial projection neurons:
a type of spinal cord neuron that project to the parabrachial nucleus (PBN) in the brain
SPBNs receive input from other neurons in the spinal cord, including
Neurotransmitters can be either excitatory or inhibitory, with excitatory neurotransmitters promoting nerve firing and inhibitory ones reducing it
excitatory
Glutamate is the primary excitatory neurotransmitter in the central nervous system, playing a crucial role in learning and memory
Acetylcholine is excitatory at the neuromuscular junction, causing muscle contractions
Norepinephrine and dopamine are also excitatory, with roles in arousal, alertness, and motivation
Norepinephrine acts as both a neurotransmitter, transmitting signals between nerve cells, and a hormone, influencing bodily functions
Neurotransmitters are chemical messengers in the body that allow neurons (nerve cells) to communicate with each other and other cells. They transmit signals, or messages, across the synapse, the tiny gap between neurons or between neurons and other cells
Dopamine is a neurotransmitter in the brain, often called the "feel-good" hormone, involved in the reward system, motivation, and movement
Other excitatory neurotransmitters include
serotonin:
Serotonin is synthesized from the amino acid tryptophan.
Tryptophan is an essential amino acid
a polar aromatic amino acid:
Tyrosine (Tyr):
Contains a hydroxyl group (-OH) on its aromatic ring, allowing it to participate in hydrogen bonding
Tryptophan (Trp):
Has a complex indole ring structure that includes a nitrogen atom, making it polar and capable of hydrogen bonding
the precursor to serotonin and melatonin. Its structure consists of an α-amino group:
an α-carboxylic acid group
and a unique indole side chain
making it a polar molecule
with a non-polar aromatic beta carbon substituent
epinephrine:
Epinephrine is both a neurotransmitter and a hormone, but it acts mainly as a hormone. Epinephrine, also known as adrenaline, plays an important role in your body's fight-or-flight response
histamine:
Histamine is released by mast cells and basophils in response to allergens, pathogens, or injury, triggering an immune response
glycine:
Glycine is a key inhibitory neurotransmitter, particularly in the spinal cord and brainstem, playing a crucial role in motor and sensory functions. It also contributes to the function of excitatory neurotransmitter:
NMDA receptors:
a glutamate receptor and a crucial ion channel in neurons. It plays a significant role in synaptic plasticity, memory formation, and learning
particularly during development
Excitatory neurotransmitters, like glutamate, bind to receptors on the postsynaptic neuron's membrane, triggering depolarization and increasing the likelihood of an action potential
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
inhibitory interneurons:
Inhibitory interneurons are neurons that release inhibitory neurotransmitters
Inhibitory neurotransmitters are chemicals that reduce the likelihood of a nerve cell firing and sending signals. These neurotransmitters act as "off switches," calming the nervous system and preventing excessive stimulation
primarily GABA, to suppress the activity of other neurons
GABA reduces neuronal excitability and can produce a calming, relaxing sensation
GABA is involved in controlling nerve cell activity, particularly those associated with anxiety, stress, and fear
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Corticofugal projection neurons:
They connect the cerebral cortex to subcortical areas, forming tracts like the corticothalamic, corticostriatal, corticorubral, corticotectal, corticobulbar, and corticospinal tracts
Callosal projection neurons:
also known as interhemispheric commissural pyramidal neurons, are specialized neurons that connect the two cerebral hemispheres via the corpus callosum, the largest white-matter tract
Modulatory projection neurons:
a type of neuron that extends axons to distant regions of the central nervous system (CNS) and exert modulatory (metabotropic) effects on target neurons, often alongside more traditional (ionotropic) actions
associative projection neurons:
neurons that project their axons within the same hemisphere to connect different cortical areas
commissural projection neurons:
Commissural projection neurons establish connections between the two sides of the brain, allowing for communication and coordination between them
corticofugal projection neurons:
are involved in the formation of several important brain circuits, including the corticothalamic, corticostriatal, corticorubral, corticotectal, corticobulbar, and corticospinal tracts
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
peripheral sensory neurons
a type of neuron that detects stimuli in the body and transmits them to the central nervous system.
These neurons are located in the peripheral nervous system (PNS) and play a crucial role in various bodily functions, including sensing external stimuli, maintaining homeostasis, and even regulating the immune system
Primary afferent fibers: These neurons receive sensory input from the body
They receive sensory information from various receptors in the body:
mechanoreceptors
sensory receptors that respond to mechanical stimuli
Cutaneous Mechanoreceptors:
These are located in the skin and include:
Meissner's corpuscles:
specialized nerve endings in the skin, responsible for detecting fine touch, low-frequency vibrations, and the sensation of flutter
They are rapidly adapting receptors, meaning they respond best to changes in stimulus rather than sustained pressure
Pacinian corpuscles:
Pacinian corpuscles are rapidly adapting mechanoreceptors that detect vibration and deep pressure
Merkel's disks:
They are composed of Merkel cells and associated Aβ-afferent nerve endings
Ruffini's corpuscles:
encapsulated nerve endings
thermoreceptors
Thermoreceptors help the body regulate its temperature by sending information about the surrounding temperature to the brain's hypothalamus, which acts as the body's "thermostat"
nociceptors
specialized sensory nerve endings that detect potentially harmful stimuli, alerting the brain to the risk of injury or damage and initiating pain perception
chemoreceptors
specialized sensory cells that detect and respond to chemical stimuli in the environment or within the body, triggering a response
Peripheral Chemoreceptors:
Found in the carotid bodies and aortic arch, these receptors primarily detect changes in blood oxygen, carbon dioxide, and pH. They send signals to the brainstem to regulate breathing and blood pressure
Central Chemoreceptors:
Located in the brainstem, these receptors respond to changes in the concentration of hydrogen ions (H+) in the cerebrospinal fluid, effectively detecting changes in blood carbon dioxide
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Interneurons
connecting primary afferent fibers to projection neurons
They outnumber both sensory and motor neurons
They act as a "middleman" between sensory neurons (afferent) and motor neurons (efferent), and also connect to other interneurons, forming intricate neural circuits
𖤓
⟁
Magnolia In Lamina
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
⟁
Sangria Vervain
♀
I will provide a brief science explanation for this character who is classified as Laminae X
also known as the gray commissure, and it's involved in processing somatosensory information and visceral nociception. Lamina X contains neurons that cross the midline of the spinal cord
receives input from the brain and sends signals back to the brain, regulating these sensory pathways
Lamina X contains various types of neurons, including interneurons, projection neurons, and neurons that receive input from both the dorsal and ventral horns of the spinal cord
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
⟁
Sangria‘s Design
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Dorsal Horn
The dorsal horn contains various types of neurons, including primary afferent fibers
projection neurons:
a type of neuron in the central nervous system (CNS) that transmit information to distant regions of the brain or spinal cord
They have long axons
the function of axons is to carry electrical impulses that are the means of communication within the brain and between the brain and the rest of the body
that extend from their cell bodies to distant targets
Their axons project to areas outside the structure they originate from, unlike interneurons which project locally within the same structure
Spinoparabrachial projection neurons:
a type of spinal cord neuron that project to the parabrachial nucleus (PBN) in the brain
SPBNs receive input from other neurons in the spinal cord, including
Neurotransmitters can be either excitatory or inhibitory, with excitatory neurotransmitters promoting nerve firing and inhibitory ones reducing it
excitatory
Glutamate is the primary excitatory neurotransmitter in the central nervous system, playing a crucial role in learning and memory
Acetylcholine is excitatory at the neuromuscular junction, causing muscle contractions
Norepinephrine and dopamine are also excitatory, with roles in arousal, alertness, and motivation
Norepinephrine acts as both a neurotransmitter, transmitting signals between nerve cells, and a hormone, influencing bodily functions
Neurotransmitters are chemical messengers in the body that allow neurons (nerve cells) to communicate with each other and other cells. They transmit signals, or messages, across the synapse, the tiny gap between neurons or between neurons and other cells
Dopamine is a neurotransmitter in the brain, often called the "feel-good" hormone, involved in the reward system, motivation, and movement
Other excitatory neurotransmitters include
serotonin:
Serotonin is synthesized from the amino acid tryptophan.
Tryptophan is an essential amino acid
a polar aromatic amino acid:
Tyrosine (Tyr):
Contains a hydroxyl group (-OH) on its aromatic ring, allowing it to participate in hydrogen bonding
Tryptophan (Trp):
Has a complex indole ring structure that includes a nitrogen atom, making it polar and capable of hydrogen bonding
the precursor to serotonin and melatonin. Its structure consists of an α-amino group:
an α-carboxylic acid group
and a unique indole side chain
making it a polar molecule
with a non-polar aromatic beta carbon substituent
epinephrine:
Epinephrine is both a neurotransmitter and a hormone, but it acts mainly as a hormone. Epinephrine, also known as adrenaline, plays an important role in your body's fight-or-flight response
histamine:
Histamine is released by mast cells and basophils in response to allergens, pathogens, or injury, triggering an immune response
glycine:
Glycine is a key inhibitory neurotransmitter, particularly in the spinal cord and brainstem, playing a crucial role in motor and sensory functions. It also contributes to the function of excitatory neurotransmitter:
NMDA receptors:
a glutamate receptor and a crucial ion channel in neurons. It plays a significant role in synaptic plasticity, memory formation, and learning
particularly during development
Excitatory neurotransmitters, like glutamate, bind to receptors on the postsynaptic neuron's membrane, triggering depolarization and increasing the likelihood of an action potential
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
inhibitory interneurons:
Inhibitory interneurons are neurons that release inhibitory neurotransmitters
Inhibitory neurotransmitters are chemicals that reduce the likelihood of a nerve cell firing and sending signals. These neurotransmitters act as "off switches," calming the nervous system and preventing excessive stimulation
primarily GABA, to suppress the activity of other neurons
GABA reduces neuronal excitability and can produce a calming, relaxing sensation
GABA is involved in controlling nerve cell activity, particularly those associated with anxiety, stress, and fear
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Corticofugal projection neurons:
They connect the cerebral cortex to subcortical areas, forming tracts like the corticothalamic, corticostriatal, corticorubral, corticotectal, corticobulbar, and corticospinal tracts
Callosal projection neurons:
also known as interhemispheric commissural pyramidal neurons, are specialized neurons that connect the two cerebral hemispheres via the corpus callosum, the largest white-matter tract
Modulatory projection neurons:
a type of neuron that extends axons to distant regions of the central nervous system (CNS) and exert modulatory (metabotropic) effects on target neurons, often alongside more traditional (ionotropic) actions
associative projection neurons:
neurons that project their axons within the same hemisphere to connect different cortical areas
commissural projection neurons:
Commissural projection neurons establish connections between the two sides of the brain, allowing for communication and coordination between them
corticofugal projection neurons:
are involved in the formation of several important brain circuits, including the corticothalamic, corticostriatal, corticorubral, corticotectal, corticobulbar, and corticospinal tracts
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
peripheral sensory neurons
a type of neuron that detects stimuli in the body and transmits them to the central nervous system.
These neurons are located in the peripheral nervous system (PNS) and play a crucial role in various bodily functions, including sensing external stimuli, maintaining homeostasis, and even regulating the immune system
Primary afferent fibers: These neurons receive sensory input from the body
They receive sensory information from various receptors in the body:
mechanoreceptors
sensory receptors that respond to mechanical stimuli
Cutaneous Mechanoreceptors:
These are located in the skin and include:
Meissner's corpuscles:
specialized nerve endings in the skin, responsible for detecting fine touch, low-frequency vibrations, and the sensation of flutter
They are rapidly adapting receptors, meaning they respond best to changes in stimulus rather than sustained pressure
Pacinian corpuscles:
Pacinian corpuscles are rapidly adapting mechanoreceptors that detect vibration and deep pressure
Merkel's disks:
They are composed of Merkel cells and associated Aβ-afferent nerve endings
Ruffini's corpuscles:
encapsulated nerve endings
thermoreceptors
Thermoreceptors help the body regulate its temperature by sending information about the surrounding temperature to the brain's hypothalamus, which acts as the body's "thermostat"
nociceptors
specialized sensory nerve endings that detect potentially harmful stimuli, alerting the brain to the risk of injury or damage and initiating pain perception
chemoreceptors
specialized sensory cells that detect and respond to chemical stimuli in the environment or within the body, triggering a response
Peripheral Chemoreceptors:
Found in the carotid bodies and aortic arch, these receptors primarily detect changes in blood oxygen, carbon dioxide, and pH. They send signals to the brainstem to regulate breathing and blood pressure
Central Chemoreceptors:
Located in the brainstem, these receptors respond to changes in the concentration of hydrogen ions (H+) in the cerebrospinal fluid, effectively detecting changes in blood carbon dioxide
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Interneurons
connecting primary afferent fibers to projection neurons
They outnumber both sensory and motor neurons
They act as a "middleman" between sensory neurons (afferent) and motor neurons (efferent), and also connect to other interneurons, forming intricate neural circuits
𖤓
⟁
Sangria In Lamina
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
⋆˚𝜗𝜚˚⋆
Moral Questions
Like I said before, the Laminae do not think like us. In order to truly get to know them, I decided to dive into their morals. You can decide for yourself who is good in this story. Or you can decide that they are a bunch of hateful animals.
The following is a questionnaire that was inspired by a psychology website. I will ask a question and have each character answer as honestly as their nature will allow
━━━━━━━•°•°•❈•°•°•━━━━━━━
Do you believe it is morally wrong to mistreat one’s own body or live an unhealthy lifestyle?
𖤓
Datura Nightshade’s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Sage Obsidian‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Lotus Lamb‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Damiana Kunzite‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Neroli Quicksilver‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Azalea Stone‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Rue Musk‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Senna Verbena‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Magnolia Saffron‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Sangria Vervain‘s Answer:
In Organelle:
⟁
In Lamina:
𖤓
━━━━━━━•°•°•❈•°•°•━━━━━━━
Do you believe males and females should have equal access to the same opportunities?
𖤓
Datura Nightshade’s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Sage Obsidian‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Lotus Lamb‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Damiana Kunzite‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Neroli Quicksilver‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Azalea Stone‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Rue Musk‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Senna Verbena‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Magnolia Saffron‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Sangria Vervain‘s Answer:
In Organelle:
⟁
In Lamina:
𖤓
━━━━━━━•°•°•❈•°•°•━━━━━━━
Would you agree that it is important for societies to preserve pride in their traditions and heritage?
𖤓
Datura Nightshade’s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Sage Obsidian‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Lotus Lamb‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Damiana Kunzite‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Neroli Quicksilver‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Azalea Stone‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Rue Musk‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Senna Verbena‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Magnolia Saffron‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Sangria Vervain‘s Answer:
In Organelle:
⟁
In Lamina:
𖤓
━━━━━━━•°•°•❈•°•°•━━━━━━━
Do you believe that nobody should be denied the ability to reproduce? Even those with serious inheritable diseases?
𖤓
Datura Nightshade’s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Sage Obsidian‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Lotus Lamb‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Damiana Kunzite‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Neroli Quicksilver‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Azalea Stone‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Rue Musk‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Senna Verbena‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Magnolia Saffron‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Sangria Vervain‘s Answer:
In Organelle:
⟁
In Lamina:
𖤓
━━━━━━━•°•°•❈•°•°•━━━━━━━
Do you feel it’s important for professional environments to uphold formality and diplomatic etiquette?
𖤓
Datura Nightshade’s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Sage Obsidian‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Lotus Lamb‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Damiana Kunzite‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Neroli Quicksilver‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Azalea Stone‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Rue Musk‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Senna Verbena‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Magnolia Saffron‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Sangria Vervain‘s Answer:
In Organelle:
⟁
In Lamina:
𖤓
━━━━━━━•°•°•❈•°•°•━━━━━━━
Do you believe people should always strive to reciprocate any favour they willingly accept from others later on, even when doing so is not expected?
𖤓
Datura Nightshade’s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Sage Obsidian‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Lotus Lamb‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Damiana Kunzite‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Neroli Quicksilver‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Azalea Stone‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Rue Musk‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Senna Verbena‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Magnolia Saffron‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Sangria Vervain‘s Answer:
In Organelle:
⟁
In Lamina:
𖤓
━━━━━━━•°•°•❈•°•°•━━━━━━━
Is it shameful to purchase something purely based on its luxury status or trendiness?
𖤓
Datura Nightshade’s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Sage Obsidian‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Lotus Lamb‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Damiana Kunzite‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Neroli Quicksilver‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Azalea Stone‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Rue Musk‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Senna Verbena‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Magnolia Saffron‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Sangria Vervain‘s Answer:
In Organelle:
⟁
In Lamina:
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Do you believe large societies need hierarchy and established leaders to function cohesively?
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Datura Nightshade’s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Sage Obsidian‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Lotus Lamb‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Damiana Kunzite‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Neroli Quicksilver‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Azalea Stone‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Rue Musk‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Senna Verbena‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Magnolia Saffron‘s Answer:
In Organelle:
⟁
In Lamina:
──── ·:*¨༺ ♱✮♱ ༻¨*:· ────
Sangria Vervain‘s Answer:
In Organelle:
⟁
In Lamina:
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