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@AsNoriu
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So Early Tangie, aka TheRealFoxtailQueen had made 72.03 of airy a bit foxtailed daytime smoke, she is a bit weaker on taste and strengh than her sister Fatty, the only other Tangie i tried already. So from all 3 curently choped and dried plants ( and i quess the rest ) she is the worst. Day 99. Strawberry Cough and other girls run fine, need to do defoliation for her, but work and future hollyday takes all my time away... Day 100. Two girls are jared, life is good,numbers are far off my expectations and i am happy with that ;))))) Day 104. Sativa pheno aka Lanky tangie falled today, her photos and videos in harvest diary, there i will put dry bud photos later. Strawberry Cough finally had time to go to hairdresser and thats what we got ;))) Never trimed any plant ever so hard as this round and its third defoliation round for her. Lets see. Pure ph water to both girls today. I never do any hard training with nutes in watering cycle, girls always get pure ph water. Strawberry Cough loves CalMag as FastDiesels. Have in mind ! Day 105. Strawberry took it like a champ and looks like a champ, believe it or not, flowers smells now with strawberries and thats above the moon for me ! Late FastDiesel will get last round of nutes on friday and only 3 weeks of water for her left. I am going on holidays for 3 weeks and one friend will be watering them, dont want anything of him than just 6.5 ph, strawberry will survive without one or two feeds, soil is ritch still tho, i hope at least ;))) We shall see .. End of week !
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@MrJoint
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🎃Obrigado por verificar meu cultivo. Desculpem a ausência, muita coisa acontecendo. Muito trabalho, precisei viajar... ⚠️O problema do stress das plantas era a CIRCULAÇÃO DO AR. As barracas da @marshydro não tem entradas inferiores de ar, só superiores. Comprei um acessório da @secretgarden chamado DUCTING FLANGE que resolveu minha vida e das meninas. 😢Más-notícias: perdemos quatro meninas. 😃Boas-notícias: a C4 que estava morando na varanda retornou para o grow e agora está sendo treinada para ser uma monstra e viver sozinha na barraca após as três Purple Punch Autoflowers serem colhidas. 🤓Sigo aprendendo.
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OK So had some non plant related as well as plant related issues this week. Been hectic with personal life, and still finding my groove with the girls .. I decided against any sort of training .... get it you can maximaxe and all but m all about letting them do their thing with some love and help, i feel like the hst and defoliation is just not for me at present time. If i get into commercial i definately see the advantages... Im growing for just myself , have zero friends and girlfriend doesnt really part take except the sometimes will hit a vape pen and shes done .. so all the fruits are for me and just do not see the need to mutalate my plants to get extra,, ill just grow more :D Recap : 5 - Barneys Glue Gelato Autoflowers 2 - "Freebie" Caramel Cream Aut o <I believe Maine Clone Company > though did not have label. All seeds came from AMAZING NORTH ATLANTIC SEED COMPANY .... ZERO issues ordering , shipping and popped 7 for 7 seeds even with some pretty disasterious goofs , see week 1 1. Struggled with Lighting - Definatly had the California Lightworks Solar Extreme TOO CLOSE .. now keeping a good 24 inches and will adjust soon with flowering 2. Struggled with PH - My well water is great .. low PPM and 7.0 ph . BUT i use ph down it seems each day with the top off water to bring the girls down from 6.5 - 6.8 to a nice 5.9-6.0 Eariier not too bad as the girls were not drinking so much ... which leads me to next 3. THEY ARE DRINKING BOY ... Holy cow this week they became drinkers liike i did not expect. I run my lights 2 pm to 8 am and turn off until 2 pm each day .... I top off in the morning before i put them to sleep , the bigger girls ... 4 of the glue gelatos autos are drinking almost half gallon each per day atm . While my lil girls <caramel cream autos > are much shorter and i have one gelato glue auto on the smaller side . They do not drink nearly as much maybe a quart . 4. I goofed on the BLOOM, I did not expect bloom so early i was planning on this week to start them .... but nope showed signs of sulfur deficiency , caught it early and changed the feeding to bloom cycle and WOW they took the hell off ... Have TREMENDOUS growth in past week sinced changed cycle ... Again im following FAST BUDS auto feeding chart for expert for general hydro to the T and adding HYDROGUARD 5. I have one caramel cream auto with mag deficiency signs on some bpottom fan leaves but i believe i got that fixed when i did the water change, not sure why just her , unless i goofed on the bucket mix. Which brings me to next statement ... IM INVESTING IN A GDAM 13 GALLON x 8 bucket plus RES kit for next grow ... Doing and maintaining 7 buckets is a royal pain in the ass . I honestly only expected 4 plants out of the 7 . AND expected fully i would kill something along the way I am visually impaired and BRain Tumor Dude .. so i gots some issues sometimes . .. but if you check out the videos i post in a bit here you can see, WTF i am doing ok i feel like . Great looking plants from my amateur opinion , always room for improvement as i am super critial of everything i do OCD/ADHD glorious combo BUT YES a better setup is needed for ease of use .. I bought my complete setup at PA HYDROPONICS , meaning my BUCKETS with fittings and hydroton . 200 bucks could not find better price anywhere he does a great fallponics custom build with 3 inch pvc that i have seen in action and tis a thing of beauty for us home growers. Plus i can add a small chiller to the mix to keep that temp a tad bit lower. IT about an 800 dollar upgrade BUT for the rest of my setup it belongs : vivosun 4x9 tent Ac Infinity T8 x 2 <one for vent one for blower , also have a great merv 13 filter box from ac infinity so as not to such in yuck from basement. 2 california solar extreme 550 So i figure adding an 8 bucket fallponics to fill the tent would look so much better tahn my 5 gallons and the constant checking each one and filling etc .... Having the res would be nice I also see the cons of it as if you goof you goof on all not just one .... But i m fairly certain i will upgrade. ***************** So right now it looks like nice buds are starting to form on all 7, the Glue Gleatos are much taller and full than the caramel creams ... I am tracking water being added and at this rate will need another change over in a day or two if drinking 1/2 gal a day and about 3 gallons <12 liters> labout inch from bottom of net pot. Rule of thumb being water change to replace nutes when you replace a volume equal to the total volume ... which is about every 6 days , last water change being 8/7 I will post some more when i inspect the ladies when i turn on the lights at 2 pm First time grower in setu
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@HanzGrowz
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Very evenly spaced growth continues. It’s almost so spread out I don’t have to do any defoliation. I love it. Has responded well to topping. I top dressed the soil with 4-4-4, Kelp meal, Alfalfa meal, malted barley, Humic & Fulvic acid, aloe powder.
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Stripped plants right back removed all big leaves. Plenty of buds just hope they pack on size and weight now..ph has dropped below 5 .ec is at 3.0 seems high ec and low ph. Trusting the process no dead leaves no nute burn.
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🌿 Grow Update: Day 2, Week 8 of Flower 🌸 Hey fellow growers, We’ve hit Day 2 of Week 8 in the flower stage, and wow, she’s smelling delicious! The buds have definitely grown since the last update, but nothing too dramatic. Still, her appearance, aroma, and stickiness are on point. Not too shabby for my first run! There’s a fair amount of larf below that I’ll be tossing, but the top buds? Holy smokes, they’re looking fantastic. I'm aiming for at least 3 ounces, and if I hit that or more, I'll be over the moon! I'll be starting my 2-week flush very soon to ensure the best quality for the final product. Wish me luck as we head into these final weeks. Let’s finish strong! 🌿💪 #GrowLife #Week8 #FirstGrow #FinalStretch #FlushingTime Note : Good job i installed a scrog net as checkout my buds in the video posted they can barely hold themselves up if i never added a scrog id of been screwed would of either had to constantly check and tie them up or worst case scenario id of gone in the room and came across snapped branches bent over!!!! SCROG IS OP for huge plants
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Info: Unfortunately, I had to find out that my account is used for fake pages in social media. I am only active here on growdiaries. I am not on facebook instagram twitter etc All accounts except this one are fake. Have fun with the update. Flowering day 47 since time change to 12/12 h. Hey everyone 😃. The lady looks beautiful 😍. The buds get thicker and thicker 👍. They smell incredibly delicious 😬. It was poured twice with 1.4 l. The tent was cleaned and the humidifier refilled. I wish you a lot of fun and all the best 👍 You can buy this Strain at : www.Zamnesia.com Type: Banana ☝️🏼 Genetics: OG Kush x unkown 👍 Vega lamp: 2 x Todogrow Led Quantum Board 100 W 💡 Bloom Lamp : 2 x Todogrow Led Cxb 3590 COB 3500 K 205W 💡💡☝️🏼 Soil : Canna Coco Professional + ☝️🏼 Fertilizer: Green House Powder Feeding ☝️🏼🌱 Water: Osmosis water mixed with normal water (24 hours stale that the chlorine evaporates) to 0.2 EC. Add Cal / Mag to 0.4 Ec Ph with Organic Ph - to 5.5 - 5.8 .
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Increased light intensity to 85% Girls are drinking 1.5 l a day. Decided to go with multi feeding this time instead of crop steering. We will see the difference. At this point they are fed 3 times a day 600-450-450ml. 150ml shots every 10 minutes.
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@ctm_dzagi
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The moment that the top slightly burned, does not soar, rather surprised that it is not massive, because on top of more than 200,000 lux, the top left call fell off the leash and rested directly on the reflector for some time, but as we can see in the photo, a couple of flowers
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They havent grown much this week as the sun has been busy else where 🙄 This week should be better,,, I hope
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@Raster893
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Entramos hoy en su 4 semana de flora y hemos realizado una poda de bajos, reducido el tiempo entre riego y riego a 2/3 dias entre uno y otro. El uso de Acti-Vera muy recomendable la verdad es que hace magia en tus plantas.
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Week 5 The plants are exploding! Its just one week to the last update. The Durban Poison are the 4 plants on the top right. The whole bunch of them are very happy with the soil mixture and all the fertilizer I added. and i think the mycrorhizae from the forest-soil connected already to the plant roots, which is fckn good news! All plants are looking super healthy! And more good news 3 out of the 4 plants are females. The test results from the lab came yesterday 💪 And apperently the seed sexing method worked quite well for 3 out of 4, very crazy! One seed that i idnetified as male turned out to be female. Only 2 more weeks and then these beauties will go outside! I m getting so excited! Next update in 2 weeks! I cant wait hahaha 💪💪🎉
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This week we are seeing the girls starting to flower, mixed in a gaia green topdress and chopped it up into the sand, then adding another layer. The sand really does a number on the fungas gnats. Going to do some lollipopping and lots of defolation. Trying to pick and chose which colas to bring to the end. I cant wait to see what this looks like when its filled with bud. After I train tonight its going to be hands off completely besides watering.
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In this week the buds are starting to get more and more compact, very sticky flowrs, and the pheno #2 smells a little stronger than this pheno but still the same strong amnesia smell very apreciated, I'm a big fan of amnesia strains, and this amnesia pro by gea seeds is an amazing version of amnesia hypro very happy with her performance so far! Stay with me to see how this lady until the end of the road! 💛❤️💚👨‍🌾
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Cut a few clones to Secure the genetics rooting them in the eazy cloner Everything’s growing good switch more them to flora flex nutrients lots cheaper for me
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@foxbberg
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Day 29: Low VPD due to shitty weather....... about 0.8 kPa at 23C. Girls happy - nothin' to bend or weave today. Still dark green - no signs of overfeeding in new foliage. Drain (average): pH 5.9; EC 2.7 Roots keep pentrating the pots. 👍 Day 30: Girls happy - nothin' to bend or weave today. Still dark green - no signs of overfeeding in new foliage. Drain (average): pH 5.8; EC 2.7 Roots keep pentrating the pots. 👍 Day 31: Girls happy - nothin' to bend or weave today. Still dark green - no signs of overfeeding in new foliage. Drain (average): pH 5.9; EC 2.7 Roots keep pentrating the pots. 👍 Day 32: Did a little defoliation - just cut a few odd lookin' fanleafs and some smaller foliage at the bottom of the stem. 65g total. Further i keep opening the canopy by moving some shoots to the next square of the net Still watering daily. Plant 3 is way thirstier and bigger than the others. Plant 2 spills out the largest amounts of drain...... but she's not far behind them other girls. Had to crank up the vent to get humidity out..... i'll keep defoliating carefully - that'll help it ;-)
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Yellow butterfly came to see me the other day; that was nice. Starting to show signs of stress on the odd leaf, localized isolated blips, blemishes, who said growing up was going to be easy! Smaller leaves have less surface area for stomata to occupy, so the stomata are packed more densely to maintain adequate gas exchange. Smaller leaves might have higher stomatal density to compensate for their smaller size, potentially maximizing carbon uptake and minimizing water loss. Environmental conditions like light intensity and water availability can influence stomatal density, and these factors can affect leaf size as well. Leaf development involves cell division and expansion, and stomatal differentiation is sensitive to these processes. In essence, the smaller leaf size can lead to a higher stomatal density due to the constraints of available space and the need to optimize gas exchange for photosynthesis and transpiration. In the long term, UV-B radiation can lead to more complex changes in stomatal morphology, including effects on both stomatal density and size, potentially impacting carbon sequestration and water use. In essence, UV-B can be a double-edged sword for stomata: It can induce stomatal closure and potentially reduce stomatal size, but it may also trigger an increase in stomatal density as a compensatory mechanism. It is generally more efficient for gas exchange to have smaller leaves with a higher stomatal density, rather than large leaves with lower stomatal density. This is because smaller stomata can facilitate faster gas exchange due to shorter diffusion pathways, even though they may have the same total pore area as fewer, larger stomata. Leaf size tends to decrease in colder climates to reduce heat loss, while larger leaves are more common in warmer, humid environments. Plants in arid regions often develop smaller leaves with a thicker cuticle and/or hairs to minimize water loss through transpiration. Conversely, plants in wet environments may have larger leaves and drip tips to facilitate water runoff. Leaf size and shape can vary based on light availability. For example, leaves in shaded areas may be larger and thinner to maximize light absorption. Leaf mass per area (LMA) can be higher in stressful environments with limited nutrients, indicating a greater investment in structural components for protection and critical resource conservation. Wind speed, humidity, and soil conditions can also influence leaf morphology, leading to variations in leaf shape, size, and surface characteristics. Small leaves: Reduce water loss in arid or cold climates. Environmental conditions significantly affect gene expression in plants. Plants are sessile organisms, meaning they cannot move to escape unfavorable conditions, so they rely on gene expression to adapt to their surroundings. Environmental factors like light, temperature, water, and nutrient availability can trigger changes in gene expression, allowing plants to respond to and survive in diverse environments. Depending on the environment a young seedling encounters, the developmental program following seed germination could be skotomorphogenesis in the dark or photomorphogenesis in the light. Light signals are interpreted by a repertoire of photoreceptors followed by sophisticated gene expression networks, eventually resulting in developmental changes. The expression and functions of photoreceptors and key signaling molecules are highly coordinated and regulated at multiple levels of the central dogma in molecular biology. Light activates gene expression through the actions of positive transcriptional regulators and the relaxation of chromatin by histone acetylation. Small regulatory RNAs help attenuate the expression of light-responsive genes. Alternative splicing, protein phosphorylation/dephosphorylation, the formation of diverse transcriptional complexes, and selective protein degradation all contribute to proteome diversity and change the functions of individual proteins. Photomorphogenesis, the light-driven developmental changes in plants, significantly impacts gene expression. It involves a cascade of events where light signals, perceived by photoreceptors, trigger changes in gene expression patterns, ultimately leading to the development of a plant in response to its light environment. Genes are expressed, not dictated! While having the potential to encode proteins, genes are not automatically and constantly active. Instead, their expression (the process of turning them into proteins) is carefully regulated by the cell, responding to internal and external signals. This means that genes can be "turned on" or "turned off," and the level of expression can be adjusted, depending on the cell's needs and the surrounding environment. In plants, genes are not simply "on" or "off" but rather their expression is carefully regulated based on various factors, including the cell type, developmental stage, and environmental conditions. This means that while all cells in a plant contain the same genetic information (the same genes), different cells will express different subsets of those genes at different times. This regulation is crucial for the proper functioning and development of the plant. When a green plant is exposed to red light, much of the red light is absorbed, but some is also reflected back. The reflected red light, along with any blue light reflected from other parts of the plant, can be perceived by our eyes as purple. Carotenoids absorb light in blue-green region of the visible spectrum, complementing chlorophyll's absorption in the red region. They safeguard the photosynthetic machinery from excessive light by activating singlet oxygen, an oxidant formed during photosynthesis. Carotenoids also quench triplet chlorophyll, which can negatively affect photosynthesis, and scavenge reactive oxygen species (ROS) that can damage cellular proteins. Additionally, carotenoid derivatives signal plant development and responses to environmental cues. They serve as precursors for the biosynthesis of phytohormones such as abscisic acid () and strigolactones (SLs). These pigments are responsible for the orange, red, and yellow hues of fruits and vegetables, while acting as free scavengers to protect plants during photosynthesis. Singlet oxygen (¹O₂) is an electronically excited state of molecular oxygen (O₂). Singlet oxygen is produced as a byproduct during photosynthesis, primarily within the photosystem II (PSII) reaction center and light-harvesting antenna complex. This occurs when excess energy from excited chlorophyll molecules is transferred to molecular oxygen. While singlet oxygen can cause oxidative damage, plants have mechanisms to manage its production and mitigate its harmful effects. Singlet oxygen (¹O₂) is considered a reactive oxygen species (ROS). It's a form of oxygen with higher energy and reactivity compared to the more common triplet oxygen found in its ground state. Singlet oxygen is generated both in biological systems, such as during photosynthesis in plants, and in cellular processes, and through chemical and photochemical reactions. While singlet oxygen is a ROS, it's important to note that it differs from other ROS like superoxide (O₂⁻), hydrogen peroxide (H₂O₂), and hydroxyl radicals (OH) in its formation, reactivity, and specific biological roles. Non-photochemical quenching (NPQ) protects plants from damage caused by reactive oxygen species (ROS) by dissipating excess light energy as heat. This process reduces the overexcitation of photosynthetic pigments, which can lead to the production of ROS, thus mitigating the potential for photodamage. Zeaxanthin, a carotenoid pigment, plays a crucial role in photoprotection in plants by both enhancing non-photochemical quenching (NPQ) and scavenging reactive oxygen species (ROS). In high-light conditions, zeaxanthin is synthesized from violaxanthin through the xanthophyll cycle, and this zeaxanthin then facilitates heat dissipation of excess light energy (NPQ) and quenches harmful ROS. The Issue of Singlet Oxygen!! ROS Formation: Blue light, with its higher energy photons, can promote the formation of reactive oxygen species (ROS), including singlet oxygen, within the plant. Potential Damage: High levels of ROS can damage cellular components, including proteins, lipids, and DNA, potentially impacting plant health and productivity. Balancing Act: A balanced spectrum of light, including both blue and red light, is crucial for mitigating the harmful effects of excessive blue light and promoting optimal plant growth and stress tolerance. The Importance of Red Light: Red light (especially far-red) can help to mitigate the negative effects of excessive blue light by: Balancing the Photoreceptor Response: Red light can influence the activity of photoreceptors like phytochrome, which are involved in regulating plant responses to different light wavelengths. Enhancing Antioxidant Production: Red and blue light can stimulate the production of antioxidants, which help to neutralize ROS and protect the plant from oxidative damage. Optimizing Photosynthesis: Red light is efficiently used in photosynthesis, and its combination with blue light can lead to increased photosynthetic efficiency and biomass production. In controlled environments like greenhouses and vertical farms, optimizing the ratio of blue and red light is a key strategy for promoting healthy plant growth and yield. Understanding the interplay between blue light signaling, ROS production, and antioxidant defense mechanisms can inform breeding programs and biotechnological interventions aimed at improving plant stress resistance. In summary, while blue light is essential for plant development and photosynthesis, it's crucial to balance it with other light wavelengths, particularly red light, to prevent excessive ROS formation and promote overall plant health. Oxidative damage in plants occurs when there's an imbalance between the production of reactive oxygen species (ROS) and the plant's ability to neutralize them, leading to cellular damage. This imbalance, known as oxidative stress, can result from various environmental stressors, affecting plant growth, development, and overall productivity. Causes of Oxidative Damage: Abiotic stresses: These include extreme temperatures (heat and cold), drought, salinity, heavy metal toxicity, and excessive light. Biotic stresses: Pathogen attacks and insect infestations can also trigger oxidative stress. Metabolic processes: Normal cellular activities, particularly in chloroplasts, mitochondria, and peroxisomes, can generate ROS as byproducts. Certain chlorophyll biosynthesis intermediates can produce singlet oxygen (1O2), a potent ROS, leading to oxidative damage. ROS can damage lipids (lipid peroxidation), proteins, carbohydrates, and nucleic acids (DNA). Oxidative stress can compromise the integrity of cell membranes, affecting their function and permeability. Oxidative damage can interfere with essential cellular functions, including photosynthesis, respiration, and signal transduction. In severe cases, oxidative stress can trigger programmed cell death (apoptosis). Oxidative damage can lead to stunted growth, reduced biomass, and lower crop yields. Plants have evolved intricate antioxidant defense systems to counteract oxidative stress. These include: Enzymes like superoxide dismutase (SOD), catalase (CAT), and various peroxidases scavenge ROS and neutralize their damaging effects. Antioxidant molecules like glutathione, ascorbic acid (vitamin C), C60 fullerene, and carotenoids directly neutralize ROS. Developing plant varieties with gene expression focused on enhanced antioxidant capacity and stress tolerance is crucial. Optimizing irrigation, fertilization, and other management practices can help minimize stress and oxidative damage. Applying antioxidant compounds or elicitors can help plants cope with oxidative stress. Introducing genes for enhanced antioxidant enzymes or stress-related proteins over generations. Phytohormones, also known as plant hormones, are a group of naturally occurring organic compounds that regulate plant growth, development, and various physiological processes. The five major classes of phytohormones are: auxins, gibberellins, cytokinins, ethylene, and abscisic acid. In addition to these, other phytohormones like brassinosteroids, jasmonates, and salicylates also play significant roles. Here's a breakdown of the key phytohormones: Auxins: Primarily involved in cell elongation, root initiation, and apical dominance. Gibberellins: Promote stem elongation, seed germination, and flowering. Cytokinins: Stimulate cell division and differentiation, and delay leaf senescence. Ethylene: Regulates fruit ripening, leaf abscission, and senescence. Abscisic acid (ABA): Plays a role in seed dormancy, stomatal closure, and stress responses. Brassinosteroids: Involved in cell elongation, division, and stress responses. Jasmonates: Regulate plant defense against pathogens and herbivores, as well as other processes. Salicylic acid: Plays a role in plant defense against pathogens. 1. Red and Far-Red Light (Phytochromes): Red light: Primarily activates the phytochrome system, converting it to its active form (Pfr), which promotes processes like stem elongation and flowering. Far-red light: Inhibits the phytochrome system by converting the active Pfr form back to the inactive Pr form. This can trigger shade avoidance responses and inhibit germination. Phytohormones: Red and far-red light regulate phytohormones like auxin and gibberellins, which are involved in stem elongation and other growth processes. 2. Blue Light (Cryptochromes and Phototropins): Blue light: Activates cryptochromes and phototropins, which are involved in various processes like stomatal opening, seedling de-etiolation, and phototropism (growth towards light). Phytohormones: Blue light affects auxin levels, influencing stem growth, and also impacts other phytohormones involved in these processes. Example: Blue light can promote vegetative growth and can interact with red light to promote flowering. 3. UV-B Light (UV-B Receptors): UV-B light: Perceived by UVR8 receptors, it can affect plant growth and development and has roles in stress responses, like UV protection. Phytohormones: UV-B light can influence phytohormones involved in stress responses, potentially affecting growth and development. 4. Other Colors: Green light: Plants are generally less sensitive to green light, as chlorophyll reflects it. Other wavelengths: While less studied, other wavelengths can also influence plant growth and development through interactions with different photoreceptors and phytohormones. Key Points: Cross-Signaling: Plants often experience a mix of light wavelengths, leading to complex interactions between different photoreceptors and phytohormones. Species Variability: The precise effects of light color on phytohormones can vary between different plant species. Hormonal Interactions: Phytohormones don't act in isolation; their interactions and interplay with other phytohormones and environmental signals are critical for plant responses. The spectral ratio of light (the composition of different colors of light) significantly influences a plant's hormonal balance. Different wavelengths of light are perceived by specific photoreceptors in plants, which in turn regulate the production and activity of various plant hormones (phytohormones). These hormones then control a wide range of developmental processes.
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Super skunk clone taken 3/11 added to my last soil mix was to hot had to flush a few time after transplant
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@BLAZED
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Week 13 (21-4 to 27-4) 21-4 Temps: 19.4 to 24.1 degrees Humidity: 54% to 63% Watering: 1000 ml. 1.6 6.2 22-4 Temps: 20.3 to 23.4 degrees Humidity: 51% to 65% Watering: 1000 ml. 0.4 6.2 23-4 Temps: 19.3 to 23.8 degrees Humidity: 50% to 64% Watering: 1000 ml. 1.6 6.2 Light set from 70% to 75% strength. 24-4 Temps: 19.4 to 23.4 degrees Humidity: 51% to 63% 25-4 Temps: 18 to 22.8 degrees Humidity: 52% to 61% Watering: 1000 ml. 0.4 6.2 26-4 Temps: 18.8 to 23.3 degrees Humidity: 49% to 61% Watering: 1000 ml. 1.6 6.2 27-4 Temps: 18.9 to 23.2 degrees Humidity: 47% to 59% Watering: 1000 ml. 0.4 6.2